Answer: Electronegativity is the tendency of an atom to attract electrons in a molecule
Explanation:
Determine the class of reaction of the reaction of piperylene with SO2 to form piperylene sulfone. (The reaction is reversible)
The class of reaction for the reaction of piperylene with sulfonic acid to form piperylene sulfone is a chemical addition reaction.
Piperylene (also known as 1,3-pentadiene) is an unsaturated hydrocarbon with two carbon-carbon double bonds. In the reaction with sulfonic acid the double bond of piperylene adds to the sulfur atom of sulfonic acid , forming a sulfonic acid intermediate. This intermediate then reacts with oxygen to form the final product, piperylene sulfone.
The reaction is reversible, meaning that piperylene sulfone can also react with sulfonic acid to reform the intermediate sulfonic acid and piperylene. Therefore, this reaction can also be classified as an equilibrium reaction.
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which of the following functional groups of an amino acid would be in the ionized state at high ph? which of the following functional groups of an amino acid would be in the ionized state at high ph? ch2oh with an open bond at the carbon. coh with an o atom double-bonded to the carbon. there is an open bond at the carbon. a line-angle formula shows a ring with six vertices. the ring contains alternating single and double bonds. a ch2 group with an opened bond is attached to the first vertex. cnh2 with an o atom double-bonded to the carbon. there is an open bond at the carbon. ch3 with an open bond at the carbon.
Among the given functional groups of an amino acid, the "coh with an o atom double-bonded to the carbon.
There is an open bond at the carbon" group would be in the ionized state at high pH. This functional group represents the carboxyl group (-COOH) of an amino acid, which acts as an acid and donates a proton to form a negatively charged carboxylate ion (-[tex]COO^-[/tex]) at high pH.
The other functional group, "[tex]ch2oh[/tex] with an open bond at the carbon," represents the hydroxyl group (-OH) of an amino acid, which does not undergo ionization at high pH. The remaining functional groups are not present in amino acids and do not undergo ionization under physiological conditions.
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True or false: In living systems, ionic compounds generally exist as ionic crystals.
The given statement " In living systems, ionic compounds generally exist as ionic crystals" is true because ionic compounds can exist as dissolved ions in solution, such as in the case of electrolytes in the body.
Ionic chemicals commonly exist in living systems as solid ionic crystals rather than as individual molecules.
For instance, rather than existing as separate, discrete molecules, the sodium and chloride ions in table salt (NaCl) create a crystal lattice structure.
The presence of ionic connections in numerous biological components, including DNA and proteins, helps to stabilise their structures.
Ionic compounds, however, can occasionally exist as dissolved ions in solutions, as is the case with the body's electrolytes.
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When OSHA uses a TLV in regulations,
- The TLV becomes a mandatory PEL
- The PEL is non-mandatory
- It is required that the TLV be updated annually
- Updated TLVs automatically become updated PELs
When OSHA uses a TLV (Threshold Limit Value) in regulations, the TLV becomes a mandatory PEL (Permissible Exposure Limit). This means that employers must ensure workers' exposure to the hazardous substance does not exceed the established PEL, which is based on the TLV. OSHA enforces these PELs to protect workers from potential health hazards in the workplace.
When OSHA uses a TLV in regulations, the TLV becomes a non-mandatory recommendation for occupational exposure limits. OSHA has established its own Permissible Exposure Limits (PELs) which are legally enforceable and mandatory. While OSHA may consider TLVs when establishing or revising PELs, the TLV does not automatically become a PEL. OSHA may also use other sources of information to establish or revise PELs. Additionally, OSHA does not require that TLVs be updated annually, although some organizations that establish TLVs may choose to update them on a regular basis.
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Explain the first two laws of thermodynamics and describe their impact on both chemical reactions and living organims.
LO #3 (Set 3)
The first law of thermodynamics, also known as the law of conservation of energy, states that energy cannot be created or destroyed, only transferred or converted from one form to another. The second law of thermodynamics states that the entropy (or disorder) of a closed system will tend to increase over time.
The first law of thermodynamics, sometimes referred to as the law of conservation of energy, holds that energy can only be transferred or changed from one form to another and cannot be created or destroyed.
The entropy (or disorder) of a closed system will often tend to rise with time, according to the second law of thermodynamics.
These rules significantly affect both chemical processes and living things. The first law of thermodynamics states that the system's total energy must not change throughout chemical processes and that any energy changes must be counterbalanced by oppositely polarised energy changes elsewhere in the system.
Contrarily, chemical reactions will tend to move in a manner that increases entropy, or disorder, according to the second law of thermodynamics.
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a soluble form of pb2 can be carefully added to a solution to sequentially precipitate and separate anions present in the solution. when pb2 is added, in what order will the following anions be precipitated?
The order in which the anions will be precipitated when soluble Pb2+ is added to a solution will depend on their respective solubility product constants (Ksp).
An anion with a lower Ksp value will precipitate first, followed by the anion with the next lowest Ksp value and so on. Therefore, without knowing the specific anions present in the solution and their respective Ksp values, it is impossible to determine the exact order in which they will be precipitated.
Solubility is a term used in chemistry to describe a material's capacity to mix with another substance, the solvent. The opposing property is called insolubility, or the solute's inability to produce such a solution.
The term "solubility" is used to describe the greatest quantity of a chemical that may dissolve in a given amount of solvent at a particular temperature, using the chemical AgCl (silver chloride) as an example. Due to its limited solubility in water, silver chloride only partially dissolves to form a saturated solution. On the other hand, molar solubility is the quantity of AgCl that may dissolve in a litre of solvent to form a saturated solution.
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a spark has been passed through a mixture of 1,00g H2 and O2 and water has been formed , what are the masses of substances
The reaction consumes 4.032 g of H₂ and 31.998 g of O₂.
When a spark is passed through a mixture of 1.00 g of H₂ and O₂, water is formed. The chemical equation for the reaction is:
2H₂ + O₂ → 2H₂O
According to the stoichiometry of the equation, 2 moles of H₂ react with 1 mole of O₂ to produce 2 moles of H₂O. The molar mass of H₂O is 18.015 g/mol.
1 mole of H₂ has a mass of 2.016 g, so 1.00 g of H₂ is equivalent to 0.496 mol.
1 mole of O₂ has a mass of 31.998 g, so the amount of O₂ present can be calculated as:
0.496 mol H₂ x (1 mol O₂ / 2 mol H₂) = 0.248 mol O₂
So, the total mass of H₂O formed can be calculated as:
2 mol H₂O x 18.015 g/mol = 36.03 g
This means that 36.03 g of water is formed in the reaction. The masses of H₂ and O₂ consumed can be calculated using their respective stoichiometric coefficients:
2 mol H₂ x 2.016 g/mol = 4.032 g H₂
1 mol O₂ x 31.998 g/mol = 31.998 g O₂
As a result, the reaction uses 4.032 g of H₂ and 31.998 g of O₂.
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A gas is collected at 24. 0 °C and 545. 0 mm Hg. When the
temperature is changed to 0 °C, what is the resulting pressure?
The resulting pressure at 0°C is approximately 499.3 mm Hg.
To solve this problem, we can use the combined gas law equation, which relates the pressure, volume, and temperature of a gas:
(P1 × V1) / T1 = (P2 × V2) / T2
Where:
P1 = Initial pressure
V1 = Initial volume (assumed constant in this case)
T1 = Initial temperature
P2 = Final pressure (what we're trying to find)
V2 = Same volume as V1 (assumed constant in this case)
T2 = Final temperature
We can plug in the given values:
P1 = 545.0 mm Hg
V1 = constant
T1 = 24.0°C + 273.15 = 297.15 K (converted to Kelvin)
P2 = unknown
V2 = constant
T2 = 0°C + 273.15 = 273.15 K (converted to Kelvin)
Now we can solve for P2:
(P1 × V1) / T1 = (P2 × V2) / T2
P2 = (P1 × V1 × T2) / (V2 × T1)
Since V1 and V2 are constant (the volume is assumed to stay the same), we can simplify the equation:
P2 = (P1 × T2) / T1
Plugging in the values:
P2 = (545.0 mm Hg × 273.15 K) / 297.15 K
P2 = 499.3 mm Hg (rounded to 3 significant figures)
Therefore, the resulting pressure at 0°C is approximately 499.3 mm Hg.
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What is the oxidation number for monatamic ions?
Monoatomic ions, also known as monoatomic species, are ions that consist of only one atom.
The oxidation number for monoatomic ions is equal to the charge of the ion itself. For example, the oxidation number of the monatomic ion Na+ is +1, while the oxidation number of the monatomic ion Cl- is -1. It is important to note that the oxidation number for monatomic ions is always a whole number, since the ion itself consists of only one atom. Monatomic ions are single atoms with a charge, either positive or negative. Positive ions (cations) have a net positive charge and negative ions (anions) have a net negative charge.
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After a recrystallization, a pure substance will ideally appear as a network of ___________. If this is not the case, it may be worthwhile to reheat the flask and allow the contents to cool more __________
O large crystals, slowlyO slowly, large crystalsO large crystals, recrystallizationO slowly, recrystallization
After a recrystallization, a pure substance will ideally appear as a network of large crystals. If this is not the case, it may be worthwhile to reheat the flask and allow the contents to cool more slowly.
The new, stress-free grains form at the grain borders and inside the old, deformed grains as the temperature rises. This takes the place of the deformed grains that strain hardening created. The metal's mechanical characteristics return to their initial, more ductile state, which is also weaker.
The temperature at which the process starts is variable and largely determined by:
length of time
composition of steel
volume of chilly work
The recrystallization temperature is lowered, new grain sizes are reduced, and strain hardening increases. Recrystallization requires between two and twenty percent cold work at a minimum.
After a recrystallization, a pure substance will ideally appear as a network of large crystals. If this is not the case, it may be worthwhile to reheat the flask and allow the contents to cool more slowly. Your answer: large crystals, slowly.
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What two categories of materials require special engineering for chemical hoods?
Radioactive substances and perchloric acid
Radioactive substances and blood-born pathogens
Toxic gases and radioactive gases
Toxic gases and blood-born pathogens
Toxic gases and radioactive gases are the two categories of materials that require special engineering for chemical hoods.
The design and construction of the hoods must take into consideration the potential hazards of these materials to ensure the safety of workers and prevent any release of harmful substances into the surrounding environment. Chemical hoods are a critical component of laboratory safety and must be carefully designed and maintained to protect workers and the surrounding area from exposure to hazardous materials. Special engineering is needed to ensure that the hood is properly vented and that any radiation that is emitted is contained and not released into the environment.
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Microscale reactions involve reaction mixtures with volumes ________ less than 5 mL Some benefits of microscale chemistry are (select all that) a. Greater amount of product b. Fewer pieces of glassware c. Reduced chemical waste d. Faster work-ups
Microscale reactions involve reaction mixtures with volumes significantly less than 5 mL (usually in the microliter range).
Some benefits of microscale chemistry include option (c) and (d) which can be explained as :
c. Reduced chemical waste: Microscale reactions use smaller amounts of reagents, which reduces the amount of chemical waste produced.
d. Faster work-ups: Microscale reactions typically require less time for mixing and reaction completion, which can lead to faster work-ups.
However, option a is not a benefit of microscale chemistry because smaller reaction volumes generally lead to smaller amounts of product. Option b is also not a benefit of microscale chemistry as the number of pieces of glassware used is not directly related to the reaction scale.
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Someone please help me out!!!
The correct options based on the information will be:
b) hydrogen bondsd) HFcovalent bonds (1), hydrogen bonds (2), dipole-dipole forces (3), London dispersion forcesHow to explain the informationEnhanced boiling points can be attributed to heightened intermolecular forces since more energy is demanded to break the bonds between molecules in a liquid state and transform them into a gaseous phase.
The presence of strong intermolecular force characterizes Bromine. Fluorine, on the other hand, serves as a gas when under standard temperature and pressure conditions because it experiences weak intermolecular forces consequent to its nonpolar nature and limited size.
Due to the involvement of polarizable electrons and larger proportions, Bromine remains in its liquid state while kept at standard temperature and pressure, attesting thereby to a stronger intermolecular bond compared with Fluorine's relatively weaker bonding property.
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how many moles of copper (ll) chlorate contain 1.45x10^21
The molar mass of copper (II) chlorate can be used to calculate how many moles of copper (II) chlorate are present in 1.45x1021. Copper (II) chlorate has a molar mass of 222.07 g/mol.
By dividing the mass of copper (II) chlorate by its molar mass, it is possible to determine how many moles of copper (II) chlorate are contained in 1.45x1021.
Accordingly, there are 6.57x1018 moles of copper (II) chlorate in 1.45x1021, which is the amount of copper (II) chlorate.
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if we say 2p6, the 2 corresponds to:group of answer choicesthe magnetic quantum numberthe number of orbitals that exist of that typethe energy levelthe number of electrons in those orbitals
If we say 2p6, the 2 corresponds to the energy level, and the 6 corresponds to the number of electrons in those orbitals.
In the electron configuration notation, the term "2p6" describes the arrangement of electrons in an atom's valence shell. The "2" in this term refers to the principal quantum number, which indicates the energy level of the valence shell. The "p" refers to the type of orbital, specifically the "p" orbital. The "6" indicates the total number of electrons present in that set of "p" orbitals. Therefore, the term "2p6" tells us that the valence shell of the atom has two energy levels and contains six electrons in the "p" orbitals. Overall, electron configuration notation helps us understand the electronic structure of atoms and their chemical properties.
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Glass, like the jar in
the image, has a
formula of SiO2. How
is glass classified?
A. A homogeneous mixture
B. A compound
C. An element
D. A heterogeneous mixture
Answer:
A Compound
Explanation:
got it right
1. Calculate ΔG∘rxnΔG∘rxn and E∘cellE∘cell at 25∘C∘C for a redox reaction with nnn = 2 that has an equilibrium constant of KKK = 4. 6×10−2.
2. A voltaic cell employs the following redox reaction:
2Fe3+(aq)+3Mg(s)→2Fe(s)+3Mg2+(aq)2Fe3+(aq)+3Mg(s)→2Fe(s)+3Mg2+(aq)
Calculate the cell potential at 25 ∘C∘C under each of the following conditions.
a. Standard conditions
b. [Fe3+]=[Fe3+]= 1. 1×10−3 MM ; [Mg2+]=[Mg2+]= 3. 10 MM
c. [Fe3+]=[Fe3+]= 3. 10 MM ; [Mg2+]=[Mg2+]= 1. 1×10−3 M
The Gibbs energy change is a better parameter which is used to determine the spontaneity or feasibility of a process. If the value of Gibbs free energy change is negative, then the process is spontaneous.
The maximum amount of energy available to the system that can be converted into useful work during a process is called the Gibbs energy. It is denoted by G.
The equation connecting equilibrium constant and G is:
ΔG° = -RT lnK
-8.314 × 298 × ln 4.6 × 10⁻² = 7.62 kJ
E°cell = 0.0592/n log K
0.0592 / 2 log 4.6 × 10⁻² = -0.022 V
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a student prepares a aqueous solution of benzoic acid . calculate the fraction of benzoic acid that is in the dissociated form in his solution. express your answer as a percentage. you will probably find some useful data in the aleks data resource.
The fraction of benzoic acid that is in the dissociated form in the solution is 0.81%, or 0.0081 as a decimal.
To calculate the fraction of benzoic acid that is in the dissociated form in an aqueous solution, we need to first write the equilibrium expression for the dissociation of benzoic acid:
C₆H₅COOH (aq) + H₂O (l) ⇌ C₆H₅COO- (aq) + H₃O⁺ (aq)
The equilibrium constant expression for this reaction is:
K = [C₆H₅COO⁻][H₃O⁺] / [C₆H₅COOH]
where [C₆H₅COO⁻], [H₃O⁺], and [C₆H₅COOH] represent the concentrations (in mol/L) of the benzoate ion, hydronium ion, and undissociated benzoic acid, respectively.
The value of the equilibrium constant (K) for the dissociation of benzoic acid is 6.5 × 10⁻⁵ at 25°C.
To calculate the fraction of benzoic acid that is in the dissociated form, we can use the following equation:
α = [C₆H₅COO⁻] / [C₆H₅COOH] × 100%
where α represents the fraction of benzoic acid that is in the dissociated form, expressed as a percentage.
At equilibrium, the concentrations of the benzoate ion and hydronium ion will be equal, since the reaction is a 1:1 reaction. Therefore, we can substitute [C₆H₅COO⁻] = [H₃O⁺] into the equilibrium constant expression and rearrange to solve for [H₃O⁺]:
K = [C₆H₅COO⁻][H₃O⁺] / [C₆H₅COOH]
6.5 × 10⁻⁵ = [H₃O⁺]² / [C₆H₅COOH]
[H₃O⁺]] = √(6.5 × 10⁻⁵ × [C₆H₅COOH])
Now, we can substitute this value of [H₃O⁺] into the equation for α and simplify:
α = [C6H5COO-] / [C₆H₅COOH] × 100%
α = (√(6.5 × 10⁻⁵ × [C₆H₅COOH)) / [C₆H₅COOH] × 100%
α = 0.81%
Therefore, by calculating we can say that the fraction of benzoic acid that is in the dissociated form in the solution is 0.81%, or 0.0081 as a decimal.
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Answer all questions
1. The activation energy for the reaction is 80 KJ
2. The letter that represents the activation energy is E
3. The change in energy for the reaction is 20 KJ
4. The reaction is endothermic
5. The activation energy after the reaction was catalyzed is 50 KJ
6. The letter that represents the activation energy after the reaction was catalyzed is B
1. How do i determine the activaition energy?We can obtain the activation energy for the reaction as follow:
Energy of reactant = 0 KJPeak energy = 80 KJActivation energy = ?Activation energy = Peak energy - Energy of reactant
Activation energy = 80 - 0
Activation energy = 80 KJ
2. How do i know which letter represents activation energy?The letter which represent the activation energy is letter E
3. How do i determine the change in energy?The change in energy can be obtain as follow:
Energy of reactant = 0 KJEnergy of product = 20 KJChange in energy = ?Change in energy = Energy of product - energy of reactant
Change in energy = 20 - 0
Change in energy = 20 KJ
4. How do i know if the reaction is exothermic or endothermic?The change in energy obtained above is positive (i.e 20 KJ).
Thus, we can conclude that the reaction is endothermic reaction.
5. How do i determine the activaition energy after the catalyst is added?We can obtain the activation energy after the catalyst is added as follow:
Energy of reactant = 0 KJPeak energy = 50 KJActivation energy for catalyzed reaction = ?Activation energy = Peak energy - Energy of reactant
Activation energy = 50 - 0
Activation energy for catalyzed reaction = 50 KJ
6. How do i know which letter represents activation energy after the catalyst is added?The letter which represent the activation energy after the catalyst is added is letter B
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treatment of acetylene with a suitable base affords lithium acetylide, which was used as a reagent in a partial synthesis of the antitumor natural product ( )-acutiphycin. (org. lett. 2014, 16, 1168-1171) step 1 draw the structure of lithium acetylide.
The treatment of acetylene with a suitable base, such as lithium hydroxide or lithium amide, results in the formation of lithium acetylide. This compound is used as a reagent in organic synthesis in the formation of carbon-carbon bonds.
In the partial synthesis of the antitumor natural product ( ⁻) acutiphycin, lithium acetylide was utilized as a key reagent. The first step in this process involved the formation of lithium acetylide through the treatment of acetylene with a suitable base.
The structure of lithium acetylide can be drawn as follows:
Li⁺
|
C≡C⁻
Carbon-carbon double bonds have more energy than carbon-carbon single bonds, which is a given.
Since bond energy and bond strength are directly inversely related, double bonds will be stronger than single bonds and triple bonds will be the strongest of all bonds.
The bond length of a carbon-carbon bond and bond energy are inversely related. This implies that the bond will be shorter and vice versa depending on the amount of bond energy.
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Consider a monatomic ion that has a charge of 1+ and the electron configuration of [Kr]4d105s2.
Write the element symbol and charge for this monatomic ion:
How many unpaired electrons are there in the ground state of this ion?
The monatomic ion with a charge of 1+ and the electron configuration of [Kr]4d105s2 is the ion of silver, Ag+. There is one unpaired electron in the ground state of this ion.
The electron configuration [Kr]4d105s2 corresponds to the neutral atom of silver (Ag). When silver loses one electron to form a 1+ ion, the electron is removed from the 5s orbital, leaving the ion with the electron configuration [Kr]4d105s1. The 4d and 5s orbitals are close in energy, so there is a possibility for one of the unpaired electrons in the 4d orbital to be promoted to the 5s orbital, resulting in a fully filled 4d subshell and one unpaired electron in the 5s orbital. In this case, since only one electron is removed from the neutral atom, there will be one unpaired electron in the ground state of the Ag+ ion.
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how many grams of p2o5 will be produced when 17.0 g of ph3 is mixed with 16.0 g of o2 in the following reaction?
Approximately 11.8 grams of P₂O₅ will be produced when 17.0 g of PH₃ is mixed with 16.0 g of O₂ in the following reaction.
In the given reaction, PH₃ reacts with O₂ to form P₂O₅. To determine the amount of P₂O₅ produced, we need to use stoichiometry. First, we should identify the balanced chemical equation for this reaction:
4PH₃ + 6O₂ → P₂O₅ + 6H₂O
Next, we should convert the given masses of reactants (PH₃ and O₂) into moles using their respective molar masses:
For PH₃: 1 mole = (1P + 3H) = (1x31.0 + 3x1.0) = 34.0 g/mol
17.0 g PH₃ × (1 mol PH₃ / 34.0 g PH₃) ≈ 0.5 mol PH₃
For O₂: 1 mole = (2O) = (2x16.0) = 32.0 g/mol
16.0 g O₂ × (1 mol O₂ / 32.0 g O₂) = 0.5 mol O₂
Now, we'll use the stoichiometry from the balanced equation to find the limiting reactant, which determines the amount of P₂O₅ produced:
For PH₃: 0.5 mol PH₃ × (1 mol P₂O₅ / 4 mol PH₃) = 0.125 mol P₂O₅
For O₂: 0.5 mol O₂ × (1 mol P₂O₅ / 6 mol O₂) ≈ 0.083 mol P₂O₅
Since the O₂ reaction yields a smaller amount of P₂O₅, O₂ is the limiting reactant. Finally, we can convert the moles of P₂O₅ produced into grams using its molar mass:
For P₂O₅: 1 mole = (2P + 5O) = (2x31.0 + 5x16.0) = 142.0 g/mol
0.083 mol P₂O₅ × (142.0 g P₂O₅ / 1 mol P₂O₅) ≈ 11.8 g P₂O₅
So, approximately 11.8 grams of P₂O₅ will be produced in this reaction.
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PLEASE HURRY Answer All Questions
1. What is the activation energy for this reaction? -
2. What letter represents the activation energy? -
3. What is the change in energy? -
4. Is it exothermic or endothermic?
5. What is the activation energy after the catalyst was added to the reaction? I
6. What letter represents the activation energy after the catalyst was added?
1) The activation energy is 80 kJ
2) I represents the activation energy
3) The change in energy is 20 kJ
4) The reaction is endothermic
5) After the catalyst was added the activation energy decreased to 50 kJ
6) The activation energy after the catalyst was added is II
What is the activation energy?
The very minimum of energy needed for a chemical reaction to take place is called activation energy. In order for reactant molecules to transform into products, the energy barrier must be broken.
Chemistry places a lot of emphasis on the idea of activation energy since it affects how quickly a reaction proceeds. The reaction moves more slowly the larger the activation energy.
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Consider the following mechanism for the decomposition of nitryl chloride: NO2Cl (g) → NO2 (g) + Cl (g) (1) Cl (g) + NO2Cl (g) → NO2 (g) + Cl2 (g) (2). 1. Write the chemical equation of the overall reaction. 2. Are there any intermediates in this mechanism. 3. If there are intermediates, write down their chemical formulas. Please explain
The chemical equation of the overall reaction is [tex]NO_{2}Cl[/tex] (g) + Cl (g) → 2[tex]NO_{2}[/tex] (g) + [tex]Cl_{2}[/tex] (g). Also, Cl (g) as an intermediate in this mechanism, its chemical formula is simply Cl.
How does the decomposition of nitryl chloride occur?To know about the decomposition of nitryl chloride, we have to
1. To write the chemical equation of the overall reaction, we must first add the two given reactions:
Reaction (1): [tex]NO_{2}Cl[/tex] (g) → 2[tex]NO_{2}[/tex] (g) + Cl (g)
Reaction (2): Cl (g) + [tex]NO_{2}Cl[/tex] (g) → 2[tex]NO_{2}[/tex] (g) + [tex]Cl_{2}[/tex] (g)
When we add these two reactions together, we get:
[tex]NO_{2}Cl[/tex] (g) + Cl (g) → 2[tex]NO_{2}[/tex] (g) + [tex]Cl_{2}[/tex] (g)
This is the chemical equation of the overall reaction.
2. To identify any intermediates in this mechanism, we look for species that are produced in one reaction and consumed in another.
In this case, Cl (g) is produced in Reaction (1) and then consumed in Reaction (2). Therefore, Cl (g) is an intermediate in this mechanism.
3. As we identified Cl (g) as an intermediate in this mechanism, its chemical formula is simply Cl.
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A 100 mL graduated cylinder has the following properties (ignoring the base):
Inner Diameter (I. D. ) = 23 mm
Outer Diameter (O. D. ) = 25 mm
Density = 2. 23 g/cm3
What is the vertical distance between 1 mL divisions on the cylinder? Give your answer in mm.
What is the mass of the graduated cylinder (in g)?
0.32mm is the vertical length between 1 mL divisions on the graduated cylinder. The mass of the graduated cylinder is 0.070g.
Inner Diameter = 23 mm
Outer Diameter= 25 mm
Density = 2. 23 [tex]g/cm3[/tex]
Volume = 100 mL
The volume of a cylinder is calculated by:
v = 2 * (π) * r * r * h
Here radius r is the unknown term. To calculate the radius of the cylinder,
r = (Outer Diameter - Inner Diameter) /2
r = (25 mm - 23 mm)/2
r = 1 mm
Calculating the height of the cylinder,
h = 100 mL / π*r*r
h = 100 mL / π*1
h = 100 / π mm
height = 31.8 mm x 100 = 0.32mm
To calculate the mass of the cylinder
m = ρV
V = π * r* r* h
V = π*(1 mm)*(100 mm) / 1000
V= 0.0314 [tex]cm^3[/tex]
m = ρV = 2.23 [tex]g/cm^3[/tex] × 0.0314 [tex]cm^3[/tex]
m = 0.070 g
Therefore, we can conclude that the mass of the graduated cylinder is 0.070g.
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The criterion of -850mV is referenced to which electrode?
A) Calomel
B) CSE
C) silver-silver chloride
D) Zinc
The criterion of -850mV is referenced to the silver-silver chloride electrode (Ag/AgCl). Therefore the correct option is option C.
In electrochemistry, the silver-silver chloride electrode is frequently used as a standard reference electrode in studies of corrosion and other electrochemical reactions.
The potential of the silver-silver chloride electrode, which is defined at 0.1976 V vs the standard hydrogen electrode (SHE) at 25°C, is stable and repeatable.
In investigations on corrosion, the corrosion potential—the potential at which the rate of corrosion is minimized—is frequently determined using the criterion of -850 mV.
The corrosion potential is normally evaluated in relation to the silver-silver chloride electrode, and a corrosion study's standard criterion is typically a potential of -850 mV versus Ag/AgCl. Therefore the correct option is option C.
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Which organelle acts like the control center of the cell and contains DNA?
Cell membrane
Nucleus
Ribosome
Vesicle
How many grams of Na are needed to react with
H₂O to liberate 4.00 x 102 mL of H₂ gas at STP?
Answer:
The balanced chemical equation for the reaction of Na with H₂O is:
2Na + 2H₂O → 2NaOH + H₂
According to the given data, 4.00 x 10^2 mL of H₂ gas is produced at STP. We can use the ideal gas law to determine the number of moles of H₂ gas produced: PV = nRT
where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, and T is the temperature.
At STP, P = 1 atm and T = 273 K, so:
V = nRT/P = (1 mol)(0.0821 L atm/mol K)(273 K)/(1 atm) = 22.4 L
Therefore, 4.00 x 10^2 mL of H₂ gas is equal to 0.4 L.
We can use the stoichiometry of the balanced chemical equation to relate the moles of H₂ gas produced to the moles of Na required:
2 mol Na : 1 mol H₂
x mol Na : 0.5 mol H₂
x = 0.25 mol Na
The molar mass of Na is 22.99 g/mol, so:
0.25 mol Na x 22.99 g/mol = 5.75 g Na
Therefore, 5.75 grams of Na are needed to liberate 4.00 x 10^2 mL of H₂ gas at STP
the structures of five of the compounds of glycolysis are given. arrange the compounds in order from the start of glycolysis to the end of glycolysis.Reactant for step 1 ââââââProduct of step 3 ââProduct of step 5 (step 4 not shown) ââProduct of step 6 ââââââââProduct of step 10Answer Bank -203PO, H2CâOPO3- CH2 ÐÐ OH H-C=0 0- I HâCâOH I H-C-0-P02- 0-0- I o= Câ0-POR- H-¢-OH H-¢-0-P03? CH2OH ÐÐ ÐÐ ÐÐ ÐÐ 0
The order of compounds from the start of glycolysis to the end of glycolysis is glucose, glucose-6-phosphate, 1,3-BPG, G3P, and pyruvate.
The correct order of the compounds in the glycolysis pathway is as follows:Reactant for step 1: Glucose (C6H12O6)Product of step 3: 1,3-Bisphosphoglycerate (1,3-BPG) (C3H7O7P2)Product of step 5 (step 4 not shown): Dihydroxyacetone phosphate (DHAP) (C3H7O6P)Product of step 6: Glyceraldehyde 3-phosphate (G3P) (C3H7O6P)Product of step 10: Pyruvate (C3H3O3)The glycolysis pathway is a sequence of ten chemical reactions that breaks down glucose into two molecules of pyruvate. Glucose is the starting material for step 1, where it is converted to glucose-6-phosphate. Subsequent steps involve rearrangements, phosphorylations, and redox reactions, resulting in the production of ATP and NADH.The first compound in the pathway is glucose, which is converted to glucose-6-phosphate in step 1. The product of step 3 is 1,3-BPG, which is formed from glyceraldehyde 3-phosphate through a redox reaction. DHAP and G3P are isomers that interconvert in step 5, with DHAP being converted to G3P. The final product of glycolysis is pyruvate, which is formed from phosphoenolpyruvate in step 10.Therefore, the order of compounds from the start of glycolysis to the end of glycolysis is glucose, glucose-6-phosphate, 1,3-BPG, G3P, and pyruvate.For more such question on glycolysis
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A catalyst will: Select the correct answer below:O increase the change in enthalpy of a reaction O decrease the change in enthalpy of a reaction O have no effect on the change in enthalpy of a reaction O depends on the reaction
A catalyst will have no effect on the change in enthalpy of a reaction.
A catalyst will have no effect on the change in enthalpy of a reaction. The enthalpy change (ΔH) of a reaction is determined by the difference between the energy of the reactants and the energy of the products. A catalyst can increase the rate of the reaction by providing an alternate reaction pathway with lower activation energy, but it does not change the energy difference between the reactants and products. Therefore, the change in enthalpy (ΔH) remains the same with or without the presence of a catalyst.
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