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磷化钴纳米穿梭体上高效的硝酸盐到氨的电还原反应

Efficient Nitrate-to-Ammonia Electroreduction at Cobalt Phosphide Nanoshuttles.

作者信息

Jia Yi, Ji Yi-Gang, Xue Qi, Li Fu-Min, Zhao Guang-Tao, Jin Pu-Jun, Li Shu-Ni, Chen Yu

机构信息

Shaanxi Key Laboratory for Advanced Energy Devices, School of Materials Science and Engineering, Shaanxi Normal University, Xi'an 710062, PR China.

Jiangsu Key Laboratory of Biofuction Molecule, Department of Life Sciences and Chemistry, Jiangsu Second Normal University, Nanjing 210013, China.

出版信息

ACS Appl Mater Interfaces. 2021 Sep 29;13(38):45521-45527. doi: 10.1021/acsami.1c12512. Epub 2021 Sep 20.

Abstract

The nitrate electroreduction reaction (NO-ERR) is an efficient and green approach for nitrate remediation, which requires a highly active and selective electrocatalyst. In this work, porous and amorphous cobalt phosphide nanoshuttles (CoP PANSs) are successfully synthesized by using Mg ion-doped calcium carbonate nanoshuttles (Mg-CaCO NSs) as the initial reaction precursor via precipitation transformation and a high-temperature phosphidation strategy. Various physical characterizations show that CoP PANSs have porous architecture, amorphous crystal structure, and big surface area. Electrochemical measurements reveal for the first time that CoP PANSs have outstanding electroactivity for NO-ERR in a neutral electrolyte. At an applied potential of -0.5 V vs reversible hydrogen electrode, CoP PANSs can achieve a high Faraday efficiency (94.24 ± 2.8%) and high yield rate (19.28 ± 0.53 mg h mg) for ammonia production, which exceeds most reported values at various electrocatalysts for NO-ERR. Thus, the present result indicates that cobalt phosphide nanomaterials have promising application for NO-ERR.

摘要

硝酸盐电还原反应(NO-ERR)是一种用于硝酸盐修复的高效且绿色的方法,这需要一种高活性和选择性的电催化剂。在这项工作中,通过使用镁离子掺杂的碳酸钙纳米穿梭体(Mg-CaCO NSs)作为初始反应前驱体,经由沉淀转化和高温磷化策略,成功合成了多孔非晶态磷化钴纳米穿梭体(CoP PANSs)。各种物理表征表明,CoP PANSs具有多孔结构、非晶态晶体结构和大表面积。电化学测量首次揭示,CoP PANSs在中性电解质中对NO-ERR具有出色的电活性。在相对于可逆氢电极-0.5 V的外加电势下,CoP PANSs可实现用于氨生产的高法拉第效率(94.24±2.8%)和高产率(19.28±0.53 mg h mg),这超过了大多数报道的用于NO-ERR的各种电催化剂的值。因此,目前的结果表明,磷化钴纳米材料在NO-ERR方面具有广阔的应用前景。

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