Literature DB >> 34162851

Converting copper sulfide to copper with surface sulfur for electrocatalytic alkyne semi-hydrogenation with water.

Yongmeng Wu1, Cuibo Liu1, Changhong Wang1, Yifu Yu1, Yanmei Shi1, Bin Zhang2,3.   

Abstract

Electrocatalytic alkyne semi-hydrogenation to alkenes with water as the hydrogen source using a low-cost noble-metal-free catalyst is highly desirable but challenging because of their over-hydrogenation to undesired alkanes. Here, we propose that an ideal catalyst should have the appropriate binding energy with active atomic hydrogen (H*) from water electrolysis and a weaker adsorption with an alkene, thus promoting alkyne semi-hydrogenation and avoiding over-hydrogenation. So, surface sulfur-doped and -adsorbed low-coordinated copper nanowire sponges are designedly synthesized via in situ electroreduction of copper sulfide and enable electrocatalytic alkyne semi-hydrogenation with over 99% selectivity using water as the hydrogen source, outperforming a copper counterpart without surface sulfur. Sulfur anion-hydrated cation (S2--K+(H2O)n) networks between the surface adsorbed S2- and K+ in the KOH electrolyte boost the production of active H* from water electrolysis. And the trace doping of sulfur weakens the alkene adsorption, avoiding over-hydrogenation. Our catalyst also shows wide substrate scopes, up to 99% alkenes selectivity, good reducible groups compatibility, and easily synthesized deuterated alkenes, highlighting the promising potential of this method.

Entities:  

Year:  2021        PMID: 34162851     DOI: 10.1038/s41467-021-24059-y

Source DB:  PubMed          Journal:  Nat Commun        ISSN: 2041-1723            Impact factor:   14.919


  28 in total

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2.  Isolated Single-Atom Pd Sites in Intermetallic Nanostructures: High Catalytic Selectivity for Semihydrogenation of Alkynes.

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4.  A frustrated-Lewis-pair approach to catalytic reduction of alkynes to cis-alkenes.

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5.  Interstitial modification of palladium nanoparticles with boron atoms as a green catalyst for selective hydrogenation.

Authors:  Chun Wong Aaron Chan; Abdul Hanif Mahadi; Molly Meng-Jung Li; Elena Cristina Corbos; Chiu Tang; Glenn Jones; Winson Chun Hsin Kuo; James Cookson; Christopher Michael Brown; Peter Trenton Bishop; Shik Chi Edman Tsang
Journal:  Nat Commun       Date:  2014-12-19       Impact factor: 14.919

6.  Transition Metal-Free Alkyne Hydrogenation Catalysis with BaGa2, a Hydrogen Absorbing Layered Zintl Phase.

Authors:  Kelsey L Hodge; Joshua E Goldberger
Journal:  J Am Chem Soc       Date:  2019-12-11       Impact factor: 15.419

7.  Ru-Catalyzed Migratory Geminal Semihydrogenation of Internal Alkynes to Terminal Olefins.

Authors:  Lijuan Song; Qiang Feng; Yong Wang; Shengtao Ding; Yun-Dong Wu; Xinhao Zhang; Lung Wa Chung; Jianwei Sun
Journal:  J Am Chem Soc       Date:  2019-10-17       Impact factor: 15.419

8.  Rare-Earth Supported Nickel Catalysts for Alkyne Semihydrogenation: Chemo- and Regioselectivity Impacted by the Lewis Acidity and Size of the Support.

Authors:  Bianca L Ramirez; Connie C Lu
Journal:  J Am Chem Soc       Date:  2020-03-06       Impact factor: 15.419

9.  Manipulating interstitial carbon atoms in the nickel octahedral site for highly efficient hydrogenation of alkyne.

Authors:  Yiming Niu; Xing Huang; Yongzhao Wang; Ming Xu; Junnan Chen; Shuliang Xu; Marc-Georg Willinger; Wei Zhang; Min Wei; Bingsen Zhang
Journal:  Nat Commun       Date:  2020-07-03       Impact factor: 14.919

10.  Highly selective electrochemical hydrogenation of alkynes: Rapid construction of mechanochromic materials.

Authors:  Bijin Li; Haibo Ge
Journal:  Sci Adv       Date:  2019-05-24       Impact factor: 14.136

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  7 in total

1.  Unraveling the mechanism for paired electrocatalysis of organics with water as a feedstock.

Authors:  Ganceng Yang; Yanqing Jiao; Haijing Yan; Ying Xie; Chungui Tian; Aiping Wu; Yu Wang; Honggang Fu
Journal:  Nat Commun       Date:  2022-06-06       Impact factor: 17.694

2.  Field-induced reagent concentration and sulfur adsorption enable efficient electrocatalytic semihydrogenation of alkynes.

Authors:  Ying Gao; Rong Yang; Changhong Wang; Cuibo Liu; Yongmeng Wu; Huizhi Li; Bin Zhang
Journal:  Sci Adv       Date:  2022-02-23       Impact factor: 14.136

3.  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

4.  Electrosynthesis of formamide from methanol and ammonia under ambient conditions.

Authors:  Nannan Meng; Jiang Shao; Hongjiao Li; Yuting Wang; Xiaoli Fu; Cuibo Liu; Yifu Yu; Bin Zhang
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5.  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
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6.  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

7.  Highly efficient ethylene production via electrocatalytic hydrogenation of acetylene under mild conditions.

Authors:  Suheng Wang; Kelechi Uwakwe; Liang Yu; Jinyu Ye; Yuezhou Zhu; Jingting Hu; Ruixue Chen; Zheng Zhang; Zhiyou Zhou; Jianfeng Li; Zhaoxiong Xie; Dehui Deng
Journal:  Nat Commun       Date:  2021-12-06       Impact factor: 14.919

  7 in total

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