Literature DB >> 33606339

Electrocatalytic Refinery for Sustainable Production of Fuels and Chemicals.

Cheng Tang1, Yao Zheng1, Mietek Jaroniec2, Shi-Zhang Qiao1.   

Abstract

Compared to modern fossil-fuel-based refineries, the emerging electrocatalytic refinery (e-refinery) is a more sustainable and environmentally benign strategy to convert renewable feedstocks and energy sources into transportable fuels and value-added chemicals. A crucial step in conducting e-refinery processes is the development of appropriate reactions and optimal electrocatalysts for efficient cleavage and formation of chemical bonds. However, compared to well-studied primary reactions (e.g., O2 reduction, water splitting), the mechanistic aspects and materials design for emerging complex reactions are yet to be settled. To address this challenge, herein, we first present fundamentals of heterogeneous electrocatalysis and some primary reactions, and then implement these to establish the framework of e-refinery by coupling in situ generated intermediates (integrated reactions) or products (tandem reactions). We also present a set of materials design principles and strategies to efficiently manipulate the reaction intermediates and pathways.
© 2021 Wiley-VCH GmbH.

Entities:  

Keywords:  catalyst design; chemical synthesis; electrocatalysis; reaction intermediates; refinery

Year:  2021        PMID: 33606339     DOI: 10.1002/anie.202101522

Source DB:  PubMed          Journal:  Angew Chem Int Ed Engl        ISSN: 1433-7851            Impact factor:   15.336


  9 in total

1.  Promoting biomass electrooxidation via modulating proton and oxygen anion deintercalation in hydroxide.

Authors:  Zuyun He; Jinwoo Hwang; Zhiheng Gong; Mengzhen Zhou; Nian Zhang; Xiongwu Kang; Jeong Woo Han; Yan Chen
Journal:  Nat Commun       Date:  2022-06-30       Impact factor: 17.694

2.  Bridge Sites of Au Surfaces Are Active for Electrocatalytic CO2 Reduction.

Authors:  Zixu Tao; Adam J Pearce; James M Mayer; Hailiang Wang
Journal:  J Am Chem Soc       Date:  2022-05-04       Impact factor: 16.383

Review 3.  Electrocatalytic Water Oxidation: An Overview With an Example of Translation From Lab to Market.

Authors:  Rakesh Sen; Supriya Das; Aritra Nath; Priyanka Maharana; Pradipta Kar; Francis Verpoort; Pei Liang; Soumyajit Roy
Journal:  Front Chem       Date:  2022-05-11       Impact factor: 5.545

4.  Electrocatalytic Semihydrogenation of Alkynes with [Ni(bpy)3]2.

Authors:  Mi-Young Lee; Christian Kahl; Nicolas Kaeffer; Walter Leitner
Journal:  JACS Au       Date:  2022-02-22

Review 5.  Catalysis for e-Chemistry: Need and Gaps for a Future De-Fossilized Chemical Production, with Focus on the Role of Complex (Direct) Syntheses by Electrocatalysis.

Authors:  Georgia Papanikolaou; Gabriele Centi; Siglinda Perathoner; Paola Lanzafame
Journal:  ACS Catal       Date:  2022-02-15       Impact factor: 13.084

6.  Saving the Energy Loss in Lithium-Mediated Nitrogen Fixation by Using a Highly Reactive Li3 N Intermediate for C-N Coupling Reactions.

Authors:  Gao-Feng Chen; Aleksandr Savateev; Zihan Song; Haoyu Wu; Yevheniia Markushyna; Lili Zhang; Haihui Wang; Markus Antonietti
Journal:  Angew Chem Int Ed Engl       Date:  2022-05-11       Impact factor: 16.823

Review 7.  Electrocatalysis with Molecular Transition-Metal Complexes for Reductive Organic Synthesis.

Authors:  Nicolas Kaeffer; Walter Leitner
Journal:  JACS Au       Date:  2022-05-31

8.  Electrocatalytic hydrogenation of quinolines with water over a fluorine-modified cobalt catalyst.

Authors:  Shuoshuo Guo; Yongmeng Wu; Changhong Wang; Ying Gao; Mengyang Li; Bin Zhang; Cuibo Liu
Journal:  Nat Commun       Date:  2022-09-08       Impact factor: 17.694

9.  One-pot H/D exchange and low-coordinated iron electrocatalyzed deuteration of nitriles in D2O to α,β-deuterio aryl ethylamines.

Authors:  Rui Li; Yongmeng Wu; Changhong Wang; Meng He; Cuibo Liu; Bin Zhang
Journal:  Nat Commun       Date:  2022-10-10       Impact factor: 17.694

  9 in total

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