Literature DB >> 33337139

Role of Intact Hydrogen-Bond Networks in Multiproton-Coupled Electron Transfer.

Walter D Guerra1, Emmanuel Odella1, Maxim Secor2, Joshua J Goings2, María N Urrutia1, Brian L Wadsworth1, Miguel Gervaldo3, Leónides E Sereno3, Thomas A Moore1, Gary F Moore1, Sharon Hammes-Schiffer2, Ana L Moore1.   

Abstract

The essential role of a well-defined hydrogen-bond network in achieving chemically reversible multiproton translocations triggered by one-electron electrochemical oxidation/reduction is investigated by using pyridylbenzimidazole-phenol models. The two molecular architectures designed for these studies differ with respect to the position of the N atom on the pyridyl ring. In one of the structures, a hydrogen-bond network extends uninterrupted across the molecule from the phenol to the pyridyl group. Experimental and theoretical evidence indicates that an overall chemically reversible two-proton-coupled electron-transfer process (E2PT) takes place upon electrochemical oxidation of the phenol. This E2PT process yields the pyridinium cation and is observed regardless of the cyclic voltammogram scan rate. In contrast, when the hydrogen-bond network is disrupted, as seen in the isomer, at high scan rates (∼1000 mV s-1) a chemically reversible process is observed with an E1/2 characteristic of a one-proton-coupled electron-transfer process (E1PT). At slow cyclic voltammetric scan rates (<1000 mV s-1) oxidation of the phenol results in an overall chemically irreversible two-proton-coupled electron-transfer process in which the second proton-transfer step yields the pyridinium cation detected by infrared spectroelectrochemistry. In this case, we postulate an initial intramolecular proton-coupled electron-transfer step yielding the E1PT product followed by a slow, likely intermolecular chemical step involving a second proton transfer to give the E2PT product. Insights into the electrochemical behavior of these systems are provided by theoretical calculations of the electrostatic potentials and electric fields at the site of the transferring protons for the forward and reverse processes. This work addresses a fundamental design principle for constructing molecular wires where protons are translocated over varied distances by a Grotthuss-type mechanism.

Entities:  

Year:  2020        PMID: 33337139     DOI: 10.1021/jacs.0c10474

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  5 in total

1.  Concerted Electron-Nuclear Motion in Proton-Coupled Electron Transfer-Driven Grotthuss-Type Proton Translocation.

Authors:  Eric A Arsenault; Walter D Guerra; James Shee; Edgar A Reyes Cruz; Yusuke Yoneda; Brian L Wadsworth; Emmanuel Odella; Maria N Urrutia; Gerdenis Kodis; Gary F Moore; Martin Head-Gordon; Ana L Moore; Thomas A Moore; Graham R Fleming
Journal:  J Phys Chem Lett       Date:  2022-05-14       Impact factor: 6.888

2.  Artificial Neural Networks as Mappings between Proton Potentials, Wave Functions, Densities, and Energy Levels.

Authors:  Maxim Secor; Alexander V Soudackov; Sharon Hammes-Schiffer
Journal:  J Phys Chem Lett       Date:  2021-02-25       Impact factor: 6.475

3.  Tuning the redox potential of tyrosine-histidine bioinspired assemblies.

Authors:  Emmanuel Odella; Thomas A Moore; Ana L Moore
Journal:  Photosynth Res       Date:  2021-01-11       Impact factor: 3.573

4.  Investigations of the Cobalt Hexamine Uranyl Carbonate System: Understanding the Influence of Charge and Hydrogen Bonding on the Modification of Vibrational Modes in Uranyl Compounds.

Authors:  Mikaela Mary F Pyrch; Jennifer L Bjorklund; James M Williams; Maguire Kasperski; Sara E Mason; Tori Z Forbes
Journal:  Inorg Chem       Date:  2022-09-13       Impact factor: 5.436

5.  Macrophage biomimetic nanocarriers for anti-inflammation and targeted antiviral treatment in COVID-19.

Authors:  Qingqin Tan; Lingjie He; Xiaojun Meng; Wei Wang; Hudan Pan; Weiguo Yin; Tianchuan Zhu; Xi Huang; Hong Shan
Journal:  J Nanobiotechnology       Date:  2021-06-10       Impact factor: 10.435

  5 in total

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