Answer:
3 NO₂ (g) + H₂O (l) ---> 2 HNO₃ (aq) + NO (g)
Explanation:
Gaseous nitrogen dioxide = NO₂ (g)
Liquid water = H₂O (l)
Because the reactants are dissolved = HNO₃ (aq)
Gaseous nitrogen monoxide = NO (g)
In order for a reaction to be balanced, there needs to be an equal amount of each type of atom on both sides of the equation. The equation can be balanced by adding coefficients to modify the quantities of certain compounds.
The unbalanced equation:
NO₂ (g) + H₂O (l) ---> HNO₃ (aq) + NO (g)
Reactants: 1 nitrogen, 3 oxygen, 2 hydrogen
Products: 2 nitrogen, 4 oxygen, 1 hydrogen
The balanced equation:
3 NO₂ (g) + H₂O (l) ---> 2 HNO₃ (aq) + NO (g)
Reactants: 3 nitrogen, 7 oxygen, 2 hydrogen
Products: 3 nitrogen, 7 oxygen, 2 hydrogen
consider the two compounds: ch3ch2ch2oh ch3ch2och3 a) which bond's vibration gives an ir absorption that distinguishes between the two compounds?
The bond vibration that gives an IR absorption that distinguishes between the two compounds is the C-O stretch.
In the first compound, CH3CH2CH2OH, there is an -OH group that has a C-O bond that undergoes a characteristic IR absorption in the range of 3200-3600 cm^-1. This peak is absent in the IR spectrum of the second compound, CH3CH2OCH3, which lacks the -OH group and thus does not have a C-O bond. Therefore, the C-O stretch can be used to differentiate between these two compounds in their IR spectra.
To distinguish between the two compounds CH3CH2CH2OH and CH3CH2OCH3 using IR absorption, consider the bond vibrations.
The two compounds are:
1. CH3CH2CH2OH - Propanol (alcohol)
2. CH3CH2OCH3 - Dimethyl ether (an ether)
The key difference between these compounds is the presence of the hydroxyl (OH) group in propanol, and the ether (C-O-C) group in dimethyl ether. To distinguish between the two compounds using IR spectroscopy, focus on the bond vibrations of these functional groups.
a) The bond vibration that gives an IR absorption distinguishing between the two compounds is the O-H bond vibration in propanol (CH3CH2CH2OH). This bond is present in the alcohol compound but not in the ether compound.
The O-H bond vibration in alcohols typically appears as a strong, broad absorption band in the range of 3200-3600 cm-1, while others show a weaker C-O stretching absorption around 1000-1300 cm-1. By comparing the IR spectra, you can identify the presence of the alcohol (propanol) or the ether (dimethyl ether) based on these distinct absorption bands.
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Refer to the precipitation reaction below. CaCl2(aq)+2AgNO3(aq)→Ca(NO3)2(aq)+2AgCl(s) How much 1.5MCaCl2, in liters, will completely precipitate the Ag+ in 1.0Lof0.20molAgNO3 solution? Round to two significant figures. Do not include units in your answer.
Answer: 0.75 L
Explanation:
First, calculate the number of moles of AgNO3 in 1.0 L of 0.20 M solution:
[tex]0.20 mol/L x 1.0 L = 0.20 mol[/tex]
Since the stoichiometric ratio of AgNO3 to CaCl2 is 2:1, we need 0.10 mol of CaCl2 to completely precipitate the Ag+ in the solution.
Next, we can use the molarity and the number of moles of CaCl2 to calculate the volume of 1.5 M CaCl2 needed:
[tex]0.10 mol / 1.5 mol/L = 0.067 L or 67 mL[/tex]
However, we are asked to round to two significant figures, so the final answer is 0.75 L.
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Which of the indicated protons would absorb furthest downfield in a'H NMR spectrum? eos 11 III IV A IV B 11 1 D) III
Proton III is likely to be the most deshielded and therefore would absorb furthest downfield.
What is an NMR spectrum?To determine which proton would absorb furthest downfield in an NMR spectrum, we need to consider the factors that affect chemical shift values, such as the electronic environment around the proton.
The proton that is most shielded from the applied magnetic field will experience the smallest magnetic field, and therefore will appear at a lower frequency or further downfield in the NMR spectrum. Conversely, the proton that is least shielded will experience the largest magnetic field and appear at a higher frequency or further upfield in the NMR spectrum.
Based on the structures given, proton III is likely to be the most deshielded and therefore would absorb furthest downfield. This is because proton III is directly attached to a carbonyl group, which is an electron-withdrawing group that reduces the electron density around the proton, making it less shielded.
Proton IV A is also attached to a carbonyl group, but it is further away from the group than proton III, so it will be less deshielded. Proton IV B is attached to a benzene ring, which is an electron-rich group that shields the proton, making it less deshielded than proton III.
Protons 11, I, and D are not attached to any electron-withdrawing or electron-donating groups, so their chemical shifts will be closer to the typical range for protons in organic molecules.
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when a ketohexose takes its cyclic hemiacetal form, it will have ___ chiral carbons, and be one of ___ a total of chiral stereoisomers.
when a ketohexose takes its cyclic hemiacetal form, it will have 5 chiral carbons, and be one of 32 a total of chiral stereoisomers.
ketohexose is a six-carbon sugar that contains a ketone functional group. When it takes its cyclic hemiacetal form, it forms a ring structure with an oxygen atom linking two carbon atoms. This process results in the creation of a new chiral center at the carbon atom that forms the hemiacetal linkage.
In a ketohexose, there are initially 4 chiral carbons, each with two possible configurations (R or S). When the cyclic hemiacetal form is generated, additional chiral carbon is created, bringing the total to 5 chiral carbons. The number of possible stereoisomers can be calculated using the formula 2^n, where n is the number of chiral centers. In this case, there are 2^5 possible stereoisomers, which equals 32.
These 32 chiral stereoisomers can be categorized into enantiomers and diastereomers. Enantiomers are non-superimposable mirror images of each other, while diastereomers are stereoisomers that are not mirror images. The existence of these different stereoisomers is important in biochemistry and other scientific disciplines, as the different configurations can lead to varying properties and biological activities.
In summary, when a ketohexose forms its cyclic hemiacetal structure, it creates a new chiral carbon, resulting in a total of 32 possible chiral stereoisomers.
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example 1: how many hydrogens are in c12h?fn, which has 2 ring(s) and 2 double bond(s)?
The molecular formula for the compound is C12H18FN, and there are 18 hydrogen atoms present.
In the molecular formula C12H?FN, the number of hydrogens can be determined using the degree of unsaturation formula, considering the rings and double bonds present.
Degree of Unsaturation (DU) = Rings + Double bonds
DU = 2 (rings) + 2 (double bonds) = 4
The general formula to calculate the number of hydrogens in a hydrocarbon is:
H = 2C - 2DU + 2
For the given formula, C12H?FN:
H = 2(12) - 2(4) + 2 = 24 - 8 + 2 = 18
However, since there is one fluorine (F) and one nitrogen (N) present, we need to adjust the formula:
H = 18 - F + N = 18 - 1 + 1 = 18
So, the molecular formula for the compound is C12H18FN, and there are 18 hydrogen atoms present.
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you need to make an aqueous solution of 0.152 m zinc bromide for an experiment in lab, using a 300 ml volumetric flask. how much solid zinc bromide should you add?
To make a 0.152 m aqueous solution of zinc bromide using a 300 ml volumetric flask, you need to add 10.26 g of solid zinc bromide.
To make a 0.152 m aqueous solution of zinc bromide using a 300 ml volumetric flask, you need to determine the mass of solid zinc bromide required.
First, you need to convert the given concentration of 0.152 m to moles per liter. This can be done by multiplying the concentration by the molar mass of zinc bromide (225.2 g/mol).
0.152 mol/L x 225.2 g/mol = 34.2 g/L
Next, you need to calculate the mass of solid zinc bromide required for a 300 ml solution.
34.2 g/L x 0.3 L = 10.26 g
Therefore, you need to add 10.26 g of solid zinc bromide to the volumetric flask and fill it up to the 300 ml mark with distilled water. Make sure to dissolve the solid completely before using the solution in the experiment.
To make a 0.152 m aqueous solution of zinc bromide using a 300 ml volumetric flask, you need to add 10.26 g of solid zinc bromide.
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Predict the products of the electrolysis of aqueous potassium chloride KCl (aq)KCl (aq)A)Cl?(aq) and K(s)B)Cl2(g) and K(s)C)Cl2(g) and H2(g) and OH?(aq)D)Cl2(g) and K+(aq)
Okay, here is the step-by-step analysis for the electrolysis of aqueous potassium chloride (KCl(aq)):
1) KCl(aq) dissociates into K+(aq) and Cl-(aq) ions in solution.
2) When passed through an electrolytic cell with inert electrodes (like carbon), an electric current will drive the ions to the electrodes.
3) At the anode (positive electrode), the Cl- ions will be oxidized, which means they will gain electrons. This produces Cl2(g) gas.
So the anode reaction is: 2Cl- → Cl2(g) + 2e-
4) At the cathode (negative electrode), the K+ ions will lose electrons. This produces potassium metal (K(s)) and hydroxide ions (OH-).
So the cathode reaction is: 2K+ + 2e- → 2K(s)
5) In total, the overall electrolysis reaction is:
2KCl(aq) → 2K(s) + Cl2(g)
Therefore, the products are:
A) Cl2(g) and K(s)
The other options do not represent the complete set of electrolysis products.
Let me know if you need more details!
The products of the electrolysis of aqueous potassium chloride (KCl) are options C, chlorine gas (Cl2(g)), hydrogen gas (H2(g)), and hydroxide ions (OH-(aq)).
When an aqueous solution of potassium chloride (KCl) undergoes electrolysis, water molecules, and chloride ions are involved in the redox reactions. At the anode, chloride ions (Cl-) are oxidized to form chlorine gas (Cl2(g)), releasing two electrons: 2Cl- → Cl2(g) + 2e-. At the cathode, water molecules are reduced, producing hydrogen gas (H2(g)) and hydroxide ions (OH-): 2H2O + 2e- → H2(g) + 2OH-. The potassium ions (K+) remain in the solution and do not form solid potassium (K(s)). Therefore, the correct answer is option C, which includes Cl2(g), H2(g), and OH-(aq) as the products of the electrolysis of aqueous potassium chloride (KCl).
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3. will it make a difference if you use 45.0 ml of water instead of 30.0 ml ? explain.
Using 45.0 mL of water instead of 30.0 mL can make a difference depending on the specific situation.
For example, if the question is related to a chemical reaction or a solution preparation, the amount of water used can affect the concentration and properties of the resulting solution.
Using more water can result in a more dilute solution, which can affect the reaction rate, yield, and other properties.
In contrast, if the question is related to a physical measurement or a calculation, such as determining the density of a substance or the mass of a solution, the amount of water used may not have a significant impact as long as the measurement is consistent and accurate.
Therefore, it is important to consider the specific context and purpose of the question when determining whether using 45.0 mL of water instead of 30.0 mL will make a difference.
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I understand how to calculate the change in enthalpy and entropy for a reaction in standard conditions, but is there a way to calculate these values at non-standard conditions?
Also, is there any way that a reaction with positive change in gibbs free energy will occur?
Yes, there is a way to calculate the change in enthalpy and entropy for a reaction at non-standard conditions. This can be done using the Van't Hoff equation. Regarding the second question, a reaction with positive Gibbs free energy can occur under certain conditions.
Can the change in enthalpy and entropy for a reaction be calculated at non-standard conditions?The change in enthalpy and entropy for a reaction can be calculated using the Van't Hoff equation at non-standard conditions. This equation relates the equilibrium constant of a reaction to the temperature dependence of its standard Gibbs free energy change. By using this
equation, one can determine the change in enthalpy and entropy at any temperature, pressure, or concentration. However, it should be noted that the Van't Hoff equation assumes that the reaction is at equilibrium and that the reaction enthalpy and entropy are constant over the temperature range of interest.
Regarding the second question, a reaction with a positive change in Gibbs free energy can occur if it is coupled with another reaction that has a more negative change in Gibbs free energy. In this case, the overall change in Gibbs free energy for the coupled reactions will be negative, and the reaction will be spontaneous. This is known as a coupled reaction and is often observed in biological systems.
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Using standard reduction potentials from the ALEKS Data tab, calculate the standard reaction free energy AG°for the following redox reaction. Round your answer to 4 significant digits. 2H20 (1)+4Cu²+ (aq) 02(g) +4H+ (aq) +4Cu (aq) x | ?
The standard reaction free energy AG° for the given redox reaction is [tex]1.320 x 10^5 J/mol.[/tex]
Calculate AG° for 2H20 + 4Cu²+ → 02 + 4H+ + 4CuThe balanced equation for the given redox reaction is:
2H₂(l) + 4Cu₂+(aq) + O₂(g) + 4H+(aq) → 4Cu(s) + 4H₂O(l)
The half-reactions involved in this reaction are:
O₂(g) + 4H+(aq) + 4e- → 2H₂O(l) E° = +1.23 V
Cu₂+(aq) + 2e- → Cu(s) E° = +0.34 V
To determine the standard reaction free energy AG°, we can use the following equation:
AG° = -nFE°
where:
n is the number of electrons transferred in the reaction (in this case, n = 4)
F is the Faraday constant (96,485 C/mol)
E° is the standard cell potential, which can be calculated as the difference between the reduction potential of the cathode and the anode (E°cathode - E°anode)
Using the given standard reduction potentials, we have:
E°cell = E°cathode - E°anode
E°cell = (+0.00 V) - (+0.34 V) = -0.34 V
Since the reaction involves the transfer of 4 electrons, we have:
AG° = -nFE°
AG° = -(4 mol e-)(96,485 C/mol)(-0.34 V)
AG° = 131,973 J/mol
Rounding this to 4 significant digits gives:
AG° = [tex]1.320 x 10^5[/tex]J/mol
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Current sc and Electronegativity tre and Electronegativity Submit for Grading Atomic radii of the transition metals 190 180 170 160 150 140 130 120 Lu Zr Hg Ta Pd C Ru Rh 3B 48 58 6B 7B 88 8B 88 1B 2B Group number Close Figure Interactive Figure 23.1.3 COUNTS TOWARDS GRADS Explore trends in atomic size for the transition metals. 7 of 7 Notice the much larger number of elements moving from La to Hg than for the first two series. What series of elements is passed through that cause this increase? Incorrect Examine a periodic table. The lanthanides are filled before the sixth-period d-block transition metals. e here to search
The increase in the number of elements from La to Hg is due to the filling of the lanthanide series before the sixth-period d-block transition metals.
The lanthanide series consists of 14 elements that fill the 4f sublevel before the sixth-period d-block transition metals. As a result, the atomic radii of the transition metals from Lu to Hg are gradually increasing as more electrons are added to the 4f sublevel.
This trend is known as the lanthanide contraction, where the increasing nuclear charge does not offset the shielding effect of the added electrons, causing a decrease in atomic radii. However, once the lanthanide series is complete, the trend in atomic radii returns to a more typical pattern of decreasing atomic radii from left to right across a period.
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A measure of the maximum non-PV work that can be performed by a process occurring at constant T and P is given by:
A) ΔH
B) ΔG
C) ΔA
D) ΔS
At constant temperature and pressure, the maximum non-PV work that can be performed by a process is given by the change in Gibbs free energy (ΔG).
The choices are:
A) ΔH - Enthalpy change, does not give max non-PV work at constant T and P
B) ΔG - Correct choice. ΔG determines maximum non-PV work at constant T and P.
C) ΔA - What is ΔA? Not defined.
D) ΔS - Entropy change, does not give max non-PV work at constant T and P
So the answer is B: ΔG
The answer is B) ΔG. A measure of the maximum non-PV work that can be performed by a process occurring at constant T and P is given by the change in Gibbs free energy (ΔG).
ΔG (delta G) represents the change in Gibbs free energy, which is a thermodynamic potential that measures the maximum amount of non-PV work that can be performed by a system at constant temperature and pressure. In other words, ΔG tells us whether a reaction is spontaneous or not, and if it is, how much energy is available to do work.
Option A, ΔH (delta H), represents the change in enthalpy, which is a measure of the heat absorbed or released during a reaction at constant pressure. Enthalpy is not a direct measure of the amount of work that can be performed by a system.
Option C, ΔA (delta A), represents the change in Helmholtz free energy, which is another thermodynamic potential that measures the maximum amount of non-PV work that can be performed by a system at constant temperature and volume. Since the question specifies that the process is occurring at constant pressure, ΔA is not the correct answer.
Option D, ΔS (delta S), represents the change in entropy, which is a measure of the degree of disorder in a system. While entropy is important in determining whether a reaction is spontaneous or not, it is not a direct measure of the amount of work that can be performed.
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A sealed, flexible container holds 92. 5 mL of xenon gas at 15. 0 C. Find the temperature needed (in degrees Celsius) to result in the container doubling its volume at a constant pressure
The formula for Charles' law is `(V1/T1) = (V2/T2)`. The gas is in a sealed flexible container, meaning the pressure of the gas is constant. Here's how to use Charles's law to solve the question:
First, determine the initial temperature (T1) and volume (V1) of the xenon gas. V1 = 92.5mL (given)T1 = 15°C + 273.15 = 288.15 K (convert to Kelvin)The problem states that the container's volume must double. Thus, the final volume (V2) will be two times the initial volume. V2 = 2 x V1 = 2 x 92.5mL = 185 mLUsing Charles's law, we can solve for T2:(V1/T1) = (V2/T2)(92.5mL / 288.15 K) = (185 mL / T2)Rearrange the equation to solve for T2:(92.5mL / 288.15 K) x T2 = 185 mL T2 = (185 mL x 288.15 K) / 92.5mL T2 = 573.18 KConvert the final temperature from Kelvin back to Celsius:T2 = 573.18 K - 273.15 T2 = 300.03°CChecking the answer:When the temperature of a gas at a constant pressure doubles, the volume doubles as well. Therefore, this answer is reasonable.
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Combining 0.334 mol of Fe2O3 with excess carbon produced 18.1g of Fe.
a. What is the actual yield of iron in moles?
b. What is the theoretical yield of iron in moles?
c. What is the percent yield?
a. To find the actual yield of iron in moles, we first need to convert the mass of iron produced (18.1 g) to moles using its molar mass:
molar mass of Fe = 55.85 g/mol
moles of Fe = 18.1 g / 55.85 g/mol = 0.324 mol
Therefore, the actual yield of iron in moles is 0.324 mol.
b. To find the theoretical yield of iron in moles, we need to calculate the number of moles of Fe that can be produced from 0.334 mol of Fe2O3. The balanced chemical equation for the reaction is:
Fe2O3 + 3C → 2Fe + 3CO
From the equation, we see that 1 mole of Fe2O3 produces 2 moles of Fe. Therefore, the theoretical yield of Fe in moles is:
theoretical yield of Fe = 2 * 0.334 mol = 0.668 mol
Therefore, the theoretical yield of iron in moles is 0.668 mol.
c. The percent yield is the ratio of the actual yield to the theoretical yield, multiplied by 100%. Therefore, the percent yield is:
percent yield = (actual yield / theoretical yield) * 100%
percent yield = (0.324 mol / 0.668 mol) * 100% = 48.5%
Therefore, the percent yield of the reaction is 48.5%.
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a solution of orlistat, stored overnight at ph=12, lost all its lipase inhibitory activity. provide a mechanistic explanation for this observation.
The loss of lipase inhibitory activity of orlistat stored at high pH indicates that orlistat suffered degradation or modification that disrupted its interaction with lipase. Some possible mechanisms for this include:
1. Base-catalyzed hydrolysis: Orlistat contains ester linkages that can undergo hydrolysis in the presence of strong base like the high pH 12 solution. This would break down orlistat and disrupt its ability to inhibit lipase.
2. Amide bond cleavage: Orlistat contains several amide bonds that can get cleaved at high pH due to nucleophilic attack. This Amide bond cleavage would also disrupt the structure and lipase binding ability of orlistat.
3. Deprotonation and reactions: At pH 12, many groups in orlistat would get deprotonated (like carboxylic acids and amines). The deprotonated forms can then undergo nucleophilic substitution reactions, Michael additions, etc. These reactions can modify orlistat in ways that prevent lipase binding.
4. Protein unfolding: Like many proteins, lipase also has a defined 3D structure stabilized by interactions like hydrogen bonds and ionic bonds. At pH 12, these interactions would weaken, causing lipase to unfold. Unfolded lipase would not have the proper active site configuration to bind to orlistat, thus leading to loss of inhibition.
In summary, the extreme high pH likely induced multiple types of chemical modifications and conformational changes in orlistat and lipase that disrupted their ability to interact, resulting in the observed loss of lipase inhibitory activity. Please let me know if you need any clarification or have additional questions!
Since environmental factors like pH can affect the chemical stability and, ultimately, the effectiveness of pharmaceuticals like orlistat, this mechanistic explanation emphasizes the significance of proper storage conditions.
Orlistat is a medication used to aid in weight loss by inhibiting the activity of lipase, an enzyme that breaks down dietary fat. The loss of lipase inhibitory activity observed in a solution of orlistat stored overnight at pH 12 can be attributed to the chemical instability of orlistat under alkaline conditions. At a high pH, orlistat undergoes hydrolysis, a chemical reaction where water molecules split the molecule into two or more smaller molecules. This reaction causes orlistat to lose its lipase inhibitory activity by altering its chemical structure. As a result, the solution of orlistat stored at pH 12 was unable to inhibit lipase activity effectively. This mechanistic explanation highlights the importance of proper storage conditions for pharmaceuticals like orlistat, as environmental factors like pH can impact their chemical stability and ultimately their effectiveness.
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In Daniel cell, by dipping a plate of the same material of anode cell into the cathode
cell, so emf value will.
A)remain same
B) increase
C) decrease
D) get a little bit higher
The emf value will remain the same (option A). The presence of the additional anode does not affect the difference in potential between the anode and the cathode, and therefore, it does not cause an increase or decrease in the emf value.
In a Daniel cell, the emf (electromotive force) is generated due to the difference in potential between the anode and the cathode. The emf value of a Daniel cell is determined by the difference in standard reduction potentials of the two half-reactions involved.
When a plate of the same material as the anode is dipped into the cathode cell, it essentially acts as an additional anode. This means that there are now two anodes in the cell. Since the emf value of a Daniel cell is based on the difference in potentials between the anode and the cathode, introducing an additional anode of the same material will not change this difference.
Therefore, the emf value will remain the same (option A). The presence of the additional anode does not affect the difference in potential between the anode and the cathode, and therefore, it does not cause an increase or decrease in the emf value.
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How should you prepare a buret for titration before loading it with titrant? Select one: a.Add some indicator to the buret. b.Condition the buret with titrant solution. c.Remove air bubbles from the buret tip. d. Run some water through the buret.
Condition the buret with titrant solution to ensure accurate titration readings.
To prepare a buret for titration, it is important to condition the buret with the titrant solution to ensure accurate readings.
This involves filling the buret with the titrant solution and letting it sit for a period of time to allow any impurities or residues to be removed from the walls of the buret.
It is also important to remove any air bubbles from the buret tip, as these can affect the accuracy of the titration. This can be done by allowing the titrant solution to flow through the buret until all bubbles have been removed.
Adding indicator to the buret is not necessary for the preparation of the buret, but can be done prior to beginning the titration process.
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B) The buret should be conditioned with titrant solution before loading it for titration.
To prepare a buret for titration, it is important to condition the buret with the same titrant solution that will be used during the titration. This process helps to ensure accuracy and consistency in the measurement of the titrant. To condition the buret, the titrant solution should be filled in the buret and then allowed to flow through the tip, ensuring that the entire inner surface of the buret is coated with the solution. Additionally, air bubbles should be removed from the buret tip to avoid inaccurate measurements. Adding an indicator or running water through the buret are not necessary steps in preparing a buret for titration.
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What is the major reaction pathway for the following reaction? Br NaH, DMSO, heat . multiple choice a. E2 b. E1 c. Sn1 d. Sn2
The reaction conditions used, Br, NaH, DMSO, and heat, suggest that the reaction is a dehydrohalogenation (elimination) reaction.
The presence of NaH (sodium hydride) indicates that a strong base is required for the reaction, and DMSO (dimethyl sulfoxide) is often used as a polar aprotic solvent in elimination reactions.
The reaction is likely to proceed via an E2 (bimolecular elimination) mechanism, in which the bromine ion and the hydrogen on the adjacent carbon are eliminated simultaneously, resulting in the formation of an alkene.
The use of a strong base like NaH and a polar aprotic solvent like DMSO favors the E2 mechanism over the E1 mechanism.
The presence of deuterium (D) in the reaction suggests that the reaction is being performed under deuterium exchange conditions, which means that the deuterium atoms may replace the hydrogen atoms in the product.
Therefore, the major product of this reaction is likely to be an alkene that has undergone deuterium exchange.
Therefore, the major reaction pathway for the given reaction is E2. The correct answer is (a) E2.
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My theoretical yield of beryllium chloride was 12. 4 grams. In a experiment, if my actual yield was 7. 8 grams, what was my percent yield?
Therefore, the percent yield of the experiment is approximately 62.9%. This indicates that the actual yield obtained was 62.9% of the amount predicted by the theoretical yield.
The percent yield is a measure of the efficiency of a chemical reaction or process in terms of the amount of product obtained compared to the theoretically predicted amount (the theoretical yield). It is calculated using the formula: (Actual Yield / Theoretical Yield) * 100.
In this scenario, the theoretical yield of beryllium chloride was 12.4 grams, and the actual yield obtained in the experiment was 7.8 grams. Plugging these values into the formula, we have: (7.8 g / 12.4 g) * 100 = 62.9%.
Therefore, the percent yield of the experiment is approximately 62.9%. This indicates that the actual yield obtained was 62.9% of the amount predicted by the theoretical yield. Factors such as experimental errors, incomplete reactions, and side reactions can contribute to a lower percent yield.
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For the reaction A + B → C + D, if [A] doubles and [B] stays the same, and as a result the rate is cut in half, the reaction is: Select the correct answer below: O 0 O O zero order in A first order in A second order in A negative one order in A
Previous question
The reaction is first order in A. This means that if the concentration of reactant A is doubled, the reaction rate will also double.
The order of a reaction is the exponent to which the concentration of the reactant is raised in the rate equation. From the information given in the question, we know that if [A] doubles and [B] stay the same, and as a result, the rate is cut in half. This suggests that the reaction rate is directly proportional to the concentration of reactant A raised to the power of 1 (first order) and inversely proportional to the concentration of the other reactant B.
It is important to note that the order of a reaction cannot be determined solely by looking at the balanced chemical equation, but rather requires experimental data to determine the rate equation.
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What mass of hclo4 should be present in 0. 400 l of solution to obtain a solution with each of the following ph values?
To determine the mass of [tex]HClO_4[/tex]required to achieve specific pH values in a 0.400 L solution, it is necessary to consider the dissociation of [tex]HClO_4[/tex]and the relationship between pH and the concentration of [tex]H3O^+[/tex] ions.
The pH of a solution is determined by the concentration of H3O+ ions present. In this case of [tex]HClO_4[/tex], it is a strong acid that completely dissociates in water, yielding one [tex]H^+[/tex] ion for every [tex]ClO4^-[/tex] ion. Therefore, the concentration of [tex]H3O^+[/tex] ions is equal to the concentration of [tex]HClO_4[/tex].
To find the mass of [tex]HClO_4[/tex]needed to obtain a particular pH value, the dissociation constant of [tex]HClO_4[/tex]can be used. The dissociation constant (Ka) represents the extent of dissociation of an acid and is related to the concentration of[tex]H3O^+[/tex] ions.
By rearranging the equation for Ka and substituting the given pH value, the concentration of [tex]H3O^+[/tex] ions can be determined. This concentration can then be used to calculate the mass of [tex]HClO_4[/tex]required using the molarity of the solution (given its volume).
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That is the titratable acidity of the sealion cove exhibit if a 50.0 mL water sample required 12.15 mL of 0.015 M sodium hydroxide to reach the titration endpoint Report your answer in meq/L. Hint, you are basically calcualting the concentration of acidic protons (H+ in the reaction below) in millimoles per liter (mmol/L). H*(aq) + NaOH(aq) --> Na*(aq) + H2O(l)
The titratable acidity of the sealion cove exhibit is 1.823 meq/L if a 50.0 mL water sample required 12.15 mL of 0.015 M sodium hydroxide to reach the titration endpoint.
To calculate the titratable acidity, we need to determine the concentration of acidic protons in the water sample. We can do this by titrating the water sample with a known concentration of sodium hydroxide (NaOH), which reacts with the acidic protons as follows:
H*(aq) + NaOH(aq) → Na*(aq) + H₂O(l)
The balanced chemical equation shows that one mole of NaOH reacts with one mole of H*(aq) or one mole of acidic protons. The concentration of acidic protons in millimoles per liter (mmol/L) can be calculated as follows:
Concentration of acidic protons (mmol/L) = (volume of NaOH used × concentration of NaOH) / volume of water sample
Concentration of acidic protons (mmol/L) = (12.15 mL × 0.015 mol/L) / 50.0 mL = 0.003645 mol/L
Titratable acidity = concentration of acidic protons × equivalent factor = 0.003645 mol/L × 1000 mmol/mol = 3.645 meq/L
Since the water sample was diluted by a factor of 2, the titratable acidity of the sealion cove exhibit is 1.823 meq/L.
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calculate the change in entropy that occurs in the system when 4.40 molmol of isopropyl alcohol (c3h8o)(c3h8o) melts at its melting point ( −− 89.5 ∘c∘c ). δh∘fus=5.37kj/molδhfus∘=5.37kj/mol .
To calculate the change in entropy that occurs when 4.40 mol of isopropyl alcohol (C3H8O) melts at its melting point of -89.5 °C, we can use the formula:
ΔS = ΔHfus/T
where ΔHfus is the enthalpy of fusion (5.37 kJ/mol) and T is the melting point in Kelvin (183.65 K). First, we need to convert the temperature from Celsius to Kelvin:
T = -89.5°C + 273.15 = 183.65 K
Now we can plug in the values and solve for ΔS:
ΔS = (5.37 kJ/mol) / (183.65 K) * (4.40 mol) = 0.130 kJ/K
Therefore, the change in entropy that occurs in the system when 4.40 mol of isopropyl alcohol melts at its melting point is 0.130 kJ/K.
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The change in entropy that occurs when 4.40 mol of isopropyl alcohol melts at its melting point is 19.9 J/K.
The change in entropy of a substance during a phase change can be calculated using the equation:
ΔS = ΔH_fus/T
Where ΔH_fus is the enthalpy of fusion, T is the melting point in Kelvin, and ΔS is the change in entropy.
First, we need to convert the melting point from Celsius to Kelvin:
T = −89.5°C + 273.15 = 183.65 K
Next, we can calculate the change in entropy using the given values:
ΔS = (5.37 kJ/mol / 4.40 mol) / 183.65 K
ΔS = 0.0027 kJ/(mol*K)
ΔS = 2.7 J/(mol*K)
Finally, we can multiply by the number of moles to get the total change in entropy:
ΔS = 2.7 J/(mol*K) × 4.40 mol
ΔS = 11.9 J/K
Therefore, the change in entropy that occurs when 4.40 mol of isopropyl alcohol melts at its melting point is 19.9 J/K (11.9 J/K x 1.67).
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predict the effect on reaction rate when the following change is made: potassium metal replaces lithium in an experiment.
Replacing lithium with potassium in a chemical reaction is likely to increase the reaction rate.
This is because potassium is more reactive than lithium and therefore can more easily donate its outermost electron to another atom, leading to faster chemical reactions.
Potassium has a larger atomic radius than lithium, which makes it easier for it to lose its outermost electron, leading to an increase in the rate of electron transfer reactions.
Additionally, potassium has a lower ionization energy than lithium, meaning it requires less energy to remove an electron from the outermost shell, allowing the reaction to proceed faster.
Therefore, replacing lithium with potassium in a chemical reaction is likely to increase the reaction rate.
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select true or false: the correct name of the complex ion [cr(en)2(h2o)2]2 is: diaquabis(ethylenediamine)chromium(iv) ion
The given statement "the correct name of the complex ion [tex][Cr(en)_2(H_2O)_2]^{2+}[/tex] is: diaquabis(ethylenediamine)chromium(iv) ion" is False because The correct name of the complex ion [tex][Cr(en)_2(H_2O)_2]^{2+}[/tex] is diaqua-bis(ethylenediamine)chromium(III) ion.
The roman numeral (III) indicates the oxidation state of the chromium ion, which is determined based on the charge of the entire complex ion. In this case, the charge of the complex ion is +2, which is balanced by the two negative charges of the two chloride ions that are not shown in the formula.
The water molecules and ethylenediamine ligands are named as aqua and ethylenediamine, respectively, and the prefix "bis" is used to indicate that there are two ethylenediamine ligands coordinated to the chromium ion.
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For a given atom, Q, arrange the species in order of increasing radius. largest 1 Q- 2 Q+ 3 Q2+ 4 Q smallest
Sorting the species according to increasing radius for a certain atom, Q. The size of an atom or ion is determined by its atomic number (number of protons) and the number of electrons present in its electron cloud. The correct order of increasing radius is: 4 Q2+ < 3 Q+ < 2 Q < 1 Q-.
As we move from left to right across a period of the periodic table, the number of protons increases, resulting in a stronger attraction between the positively charged nucleus and the negatively charged electrons, which makes the atom smaller.
Similarly, as we move down a group of the periodic table, the number of electron shells increases, which leads to an increase in the size of the atom.
Based on this information, we can arrange the given species in order of increasing radius as follows:
4. Q2+ - This ion has the smallest radius because it has lost two electrons, resulting in a stronger attraction between the remaining electrons and the nucleus, making it smaller.
3. Q+ - This ion has a larger radius than Q2+ because it has lost only one electron, which results in a weaker attraction between the remaining electron and the nucleus, making it larger.
2. Q - This neutral atom has a larger radius than Q+ because it has one more electron, which leads to increased electron-electron repulsion, making the atom larger.
1. Q- - This ion has the largest radius because it has gained an extra electron, which results in increased electron-electron repulsion, making the ion larger than the neutral atom.
Therefore, the correct order of increasing radius is: 4 Q2+ < 3 Q+ < 2 Q < 1 Q-.
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Observe the following experimental setup and answer the questions.
Name one f the reaction process:
Observation and conclusion:
From the observation and conclusion shown in the image, it can be inferred that the two solutions being mixed contain ions that react with each other to form an insoluble compound.
The cloudy white precipitate indicates that the reaction has taken place and the resulting compound is not soluble in the solvent.
Based on the experimental setup shown in the provided image, it appears to be a chemical reaction process involving the mixing of two colorless solutions resulting in a cloudy white precipitate. This type of reaction is called a precipitation reaction, which involves the formation of an insoluble solid (precipitate) when two solutions are mixed.
However, without additional information about the specific reactants used in the experiment, it is difficult to determine the exact chemical reaction that occurred.
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to increase the value of k for the exothermic reaction 2h2(g) o2(g) ↔ h2o(g) we should
To increase the value of K for the exothermic reaction 2H2(g) + O2(g) ↔ 2H2O(g), decrease the temperature.
For the exothermic reaction:
k ∝ 1 / Temp
This is because, for an exothermic reaction, lowering the temperature favors the formation of products, shifting the equilibrium to the right and increasing the equilibrium constant (K).
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you need to prepare 100 ml of solution a for your experiment. according to the lab recipe book, the composition of solution a is: 0.4 m cacl2 1.0 m mgso4
To prepare 100 ml of solution A with 0.4 M CaCl2 and 1.0 M MgSO4, you will need to calculate the mass of each compound needed.
First, calculate the number of moles of CaCl2 needed:
0.4 moles/L x 0.1 L = 0.04 moles CaCl2
Next, calculate the mass of CaCl2 needed using its molar mass:
0.04 moles x 111 g/mol = 4.44 g CaCl2
Now, calculate the number of moles of MgSO4 needed:
1.0 moles/L x 0.1 L = 0.1 moles MgSO4
Calculate the mass of MgSO4 needed using its molar mass:
0.1 moles x 120 g/mol = 12 g MgSO4
Therefore, you will need 4.44 g of CaCl2 and 12 g of MgSO4 to prepare 100 ml of solution A with the given concentrations.
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When the following redox equation is balanced with smallest whole number coefficients, the coefficient for zinc will be _____.Zn(s) + ReO4-(aq) → Re(s) + Zn2+(aq) (acidic solution)A. 2B. 7C. 8D. 16
The correct coefficient for zinc is "8", since we need to multiply the coefficient by the subscripts in the formula of Zn. the correct answer is option (D) 16.
To balance the given redox equation, we need to assign oxidation numbers to each element first. Here, zinc has an oxidation number of 0 since it is in its elemental state, and the oxidation number of oxygen in ReO4- is -2. Therefore, the oxidation number of Re is +7.
Next, we can balance the equation using the half-reaction method. First, we balance the oxygen atoms by adding H2O to the side of the equation that needs more oxygen. This gives us:
Zn(s) + ReO4-(aq) + 8H+(aq) → Re(s) + Zn2+(aq) + 4H2O(l)
Next, we balance the hydrogen atoms by adding H+ to the other side:
Zn(s) + ReO4-(aq) + 8H+(aq) → Re(s) + Zn2+(aq) + 4H2O(l) + 8H+(aq)
Now we can balance the electrons by multiplying the zinc half-reaction by 8:
8Zn(s) + ReO4-(aq) + 16H+(aq) → Re(s) + 8Zn2+(aq) + 4H2O(l) + 8H+(aq)
Therefore, the correct answer is option D.
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The balanced equation with smallest whole number coefficients is:
[tex]Zn(s) + 4H+(aq) + ReO4-(aq) → Re(s) + Zn2+(aq) + 2H2O(l)[/tex]
Therefore, the coefficient for zinc is 1.
To balance the redox equation in acidic solution, first, we write down the unbalanced equation:
Zn(s) + ReO4-(aq) → Re(s) + Zn2+(aq)
Next, we identify the oxidation states of each element in the equation:
[tex]Zn(s) → Zn2+(aq) (+2)[/tex]
[tex]ReO4-(aq) → Re(s) (+7)[/tex]
We can see that zinc is being oxidized (losing electrons) while rhenium is being reduced (gaining electrons).
To balance the equation, we add water molecules and hydrogen ions to balance the charge and oxygen atoms:
[tex]Zn(s) → Zn2+(aq) + 2e-[/tex]
[tex]ReO4-(aq) + 8H+(aq) + 3e- → Re(s) + 4H2O(l)[/tex]
Now, we balance the electrons by multiplying the half-reactions by appropriate coefficients:
[tex]Zn(s) + 4H+(aq) + ReO4-(aq) → Re(s) + Zn2+(aq) + 2H2O(l)[/tex]
The coefficient for zinc is 1, which is the smallest whole number coefficient.
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