4. (10 points) a) Place the following compounds in order of INCREASING acidity. A) OH B) NO2 LOH OH LOH C) D) O₂N b) For the most acidic compound in part a), draw the additional resonance structure that indicates extra stabilization of the anion, leading to the increase in acidity.
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- For each conjugate acid-base pair, identify the first species as an acid or a base and the second species as its conjugate acid or base. In addition, draw Lewis structures for each species, showing all valence electrons and any formal charge. (a) CH3S- CH3SHFor the following equilibrium shown below: (a) Predict the products of the acid-base equilibrium. (b) Label the acid, base, conjugate acid, and conjugate base. (c) Estimate the Keq of the reaction.3. All of the following compounds are acids containing Cl. Which compound is the weakest acid? (а) НCI (b) HСIO (c) HC1O2 (d) HC103 (e) HCI04
- Which will be the stronger acid: propene (CH2=CHCH3) or propane (C3H8)? Explain by using resonance Lewis structures.someone please helpFor each conjugate acid-base pair, identify the first species as an acid or a base and the second species as its conjugate acid or base. In addition, draw Lewis structures for each species, showing all valence electrons and any formal charge. (a) HCOOH HCOO-
- As we will see in later chapters, many steps in key reaction sequences involve acid–base reactions. (a) Draw curved arrows to illustrate the flow of electrons in steps [1]–[3]. (b) Identify the base and its conjugate acid in step [1]. (c) Identify the acid and its conjugate base in step [3].Identify the following solutions as being either acidic or basic. Match each solution (on the left) with the correct acidity (on the right). Be careful to accurately distinguish strong from weak!3. For the following acid - base reaction, (a) predict the products; (b) identify the Bronsted acid, Bronsted base, conjugate acid, and conjugate base; (c) use curved arrows to show the flow of electron pairs in the reaction. CH3 CH2C-OH + NaNHa
- Consider the reaction below: [1] Draw the products of the Bronsted-Lowry acid/base reaction [2] Use curved arrows to show the movement of electrons to form the products (draw in missing lone pairs of electrons if they are involved) [3] Label the acid, base, conjugate acid, conjugate base H -N' your answer on paper and submit a picture of your work here. If that does not work, submit your work to the dropbox labeled (Quiz 3 dropbox) after you have completed the rest of the quiz. WriteCan someone please show how I would draw the lewis structures for both of these compunds? The orginal question was which compound is more acidic, I understand the compound on the right is more acidic because it holds an sp2 bond, while the compound on th right holds an sp3 bond, but that is rally hard to see since i dont know how to draw out that lewis structure. and am i looking at the O atom to decide which is more acidic, thank you so much in advance + CH3OCH 3 H or H3C OH CH3View Available Hint(s) (CH3)3 N Zn²+ H₂O NH₁ Fe³+ BF3 edback and fill (CH3)3N(9) + BF3 (9) (CH₂)2NBF, (s): P is the Lewis base. Fe³+ (aq) + 6H₂O(1) Fe(H₂O) (aq): the Lewis base. p Zn²+ (aq) + 4NH3(aq) Zn(NH₂)2 (aq): is the Lewis base. is the Lewis acid and is the Lewis acid and is the Lewis acid and Reset Help