Write equations for the reactions of the following Bronsted bases with water: (a) F- (b) C5H5N...
1. Write the equations for the reaction of the following Bronsted acids with water: (a) NH4 + (b) H3C6H5O7 (c) H2SO4 2. Write equations for the reactions of the following Bronsted bases with water: (a) HCO2 - (b) (CH3)2NH (c) SO4 2-
1. Write the equations for the reaction of the following Bronsted acids with water: (a) H2S (b) HC2O4- (c) HSO3- 2. Write equations for the reactions of the following Bronsted bases with water: (a) PO4 3- (b) N2H4 (c) H2C6H5O7- 3. In each of the following questions, assume that there is no volume change when HCl is added to water in part (a) or the phosphate buffer in part (c). (a) Calculate the pH when 0.129 moles of HCl are added...
#2 & 3 Identify the following species in water, as Bronsted Acids [A] or Bronsted Bases [B]: H_3O^+; H_2SO_4; OH^-; HCN; CH_3COOH; CH_3NH_2 WRITE NET Ionic Equations for the reactions of H_2PO_4^-, an amphiprotic ion, with aqueous solutions of HCl KOH Give the conjugate base for each of the following acids: HI HSO_4^- H_2CO_3 C_2H_5NH_3^+ Give the conjugate acid for each of the following bases: NH_3 O^2- H_2O PO_4^3- Identify the conjugate acid-base pairs in each of the following reactions:...
Write a net ionic equation to show that pyridine, C5H5N, behaves as a Bronsted-Lowry base in water. BL base BL acid BL acid BL base + H2O +
Write a balanced Bronsted Lowry acid base reaction with each of the following weak bases and water. Also, write a Kb expression for each weak base a. NH3 b. CH3NH2 c. C6H5N
Identify the Bronsted acids and bases in the following equation (A-Bronsted acid, B = Bronsted base): CH3OH OH H2O CH30 a) A BBA b) BA BA c) A BA B d) BAA B
2. Classify the following as strong or weak acids/bases. Write balances equations that describe the dissociation of the compounds in water. a. HF b. NH3 c. NaOH d. C6H5NH2 e. HNO2 f. CH3COOH g. HCI h. H2CO3 3. Please the species in each of the following groups in order of increasing acid strength. a. HIO3, HCIO3, HBrO3 b. HF, HI, HCI c. HOCI, HOI, HOF e. H2O, H2S, H2Se f. HBO, HBrO2, HBrO4, HBrO3
Based on your understanding of Bronsted acids and bases - what is the role of water molecules in the auto-ionization of water reaction shown below? H2O(l) + H2O(1) ► OH(aq) + H30*(aq) H2O molecules are only functioning as a Bronsted acid in this reaction H2O molecules are functioning as both a Bronsted acid and base in this reaction H2O is not functioning as a Bronsted acid or a base, it is the solvent / liquid O H2O molecules are only...
Write equations showing how each of the following weak bases ionizes water to form OH. Part A NH:
2) Predicting acid-base equilibrium. Write equations for the following acid-base reactions and predict (by trends) which side the equilibrium prefers: a. CH3CH2OH + NaN(CH3)2 b. CH3NH3 + + CH3O c. CH3CHFCO2H + FCH2CH2CO2 - d. NaOH + H2S e. CF3CO2H + CH3CO2