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In-situ construction of N-doped carbon nanosnakes encapsulated FeCoSe nanoparticles as efficient bifunctional electrocatalyst for overall water splitting

In-situ construction of N-doped carbon nanosnakes encapsulated FeCoSe nanoparticles as efficient bifunctional electrocatalyst for overall water splitting

作     者:Yuan Pan Minmin Wang Min Li Guangxun Sun Yinjuan Chen Yunqi Liu Wei Zhu Bin Wang Yuan Pan;Minmin Wang;Min Li;Guangxun Sun;Yinjuan Chen;Yunqi Liu;Wei Zhu;Bin Wang

作者机构:State Key Laboratory of Heavy Oil ProcessingChina University of Petroleum(East China)Qingdao 266580ShandongChina Key Laboratory of Advanced Catalytic Materials and TechnologyAdvanced Catalysis and Green Manufacturing Collaborative Innovation CenterChangzhou UniversityChangzhou 213164JiangsuChina State Key Lab of Organic-Inorganic CompositesBeijing University of Chemical TechnologyBeijing 100029China School of Chemistry and Chemical EngineeringShaanxi Normal UniversityXi’an 710119ShaanxiChina 

出 版 物:《Journal of Energy Chemistry》 (能源化学(英文版))

年 卷 期:2022年第31卷第5期

页      面:699-708页

核心收录:

学科分类:0820[工学-石油与天然气工程] 081702[工学-化学工艺] 07[理学] 08[工学] 0817[工学-化学工程与技术] 070205[理学-凝聚态物理] 0805[工学-材料科学与工程(可授工学、理学学位)] 080502[工学-材料学] 0703[理学-化学] 0702[理学-物理学] 

基  金:supported by the Taishan Scholars Program of Shandong Province (No. tsqn201909065) the National Natural Science Foundation of China (No. 22108306) the Shandong Provincial Natural Science Foundation (ZR2020QB174, ZR2021YQ15) the Postgraduate Innovation Fund of China University of Petroleum(East China)(No. YCX2020037) the State Key Laboratory of Organic-Inorganic Composites (oic-202101006) the Key Laboratory of Functional Inorganic Material Chemistry (Heilongjiang University),Ministry of Education。 

主  题:FeCoSe nanoparticles N-doped carbon nanosnakes Bifunctional electrocatalyst Synergistic effect Water splitting 

摘      要:The development of bifunctional electrocatalysts with high activity and stability for hydrogen evolution reaction(HER)and oxygen evolution reaction(OER)is crucial for efficient overall water splitting but still challenging.Herein,we propose a facile and effective polymerization–pyrolysis–selenization(PPS)strategy for in-situ synthesis of N-doped carbon nanosnakes(NCNSs)encapsulated Fe-doped CoSe nanoparticles(NPs)derived from predesigned trimetallic Zn/Fe/Co polyphthalocyanine conjugated polymer networks.Benefiting from the synergistic effect between the regulation of Fe atoms and CoSe NPs as well as the confinement effect of in situ formed porous conductive carbon nanosnakes,the FeCoSe@NCNSs catalyst exhibited the excellent electrocatalytic activity for HER with small overpotentials(142 and 99 mV in 0.5 M H_(2)SO_(4) and 1 M KOH)and OER(320 mV in 1 M KOH)at the current density of 10 mA cm^(-2).Particularly,it also can be used as an efficient bifunctional electrocatalyst with a cell voltage of 1.66 V to achieve a current density of 10 mA cm^(-2) and superior stability for overall water splitting.Density functional theory study reveals that the doping of Fe atoms on Co Se enhanced the splitting and delocalization of metal-d orbitals close Fermi level,and modifies the distribution of Se-p orbitals close Fermi level,which improved the flexibility of electron donor-acceptor system and the hydrogen adsorption free energy change on metal-metal bridge sites in FeCoSe@NCNSs.Additionally,beneficial from the accepting of Fe-Se bridge site,the overpotential of OER which following intramolecular oxygen coupling mechanism is also decreased,thus accelerating the electrocatalytic performance.This work presents a novel strategy to regulate the activity and stability of transition metal selenides and facilitating the rational design of bifunctional electrocatalysts for overall water splitting applications.

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