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将甲烷重整废催化剂重新利用为高效的全水分裂电催化剂。

Reutilizing Methane Reforming Spent Catalysts as Efficient Overall Water-Splitting Electrocatalysts.

作者信息

Khan Muhammad Awais, Mehran Muhammad Taqi, Naqvi Salman Raza, Khoja Asif Hussain, Shahzad Faisal, Sikander Umair, Hussain Sajjad, Khan Ramsha, Sarfaraz Bilal, Baig Mutawara Mahmood

机构信息

School of Chemical and Materials Engineering (SCME), National University of Sciences & Technology (NUST), H-12, Islamabad 44000, Pakistan.

Fossil Fuel Laboratory, Department of Thermal Energy Engineering, U.S.-Pakistan Centre for Advanced Studies in Energy (USPCASE), National University of Sciences & Technology (NUST), Islamabad 44000, Pakistan.

出版信息

ACS Omega. 2021 Aug 12;6(33):21316-21326. doi: 10.1021/acsomega.1c01558. eCollection 2021 Aug 24.

Abstract

It is extremely prudent and highly challenging to design a greener bifunctional electrocatalyst that shows effective electrocatalytic activity and high stability toward electrochemical water splitting. As several hundred tons of catalysts are annually deactivated by deposition of carbon, herein, we came up with a strategy to reutilize spent methane reforming catalysts that were deactivated by the formation of graphitic carbon (GC) and carbon nanofibers (CNF). An electrocatalyst was successfully synthesized by in situ deposition of noble metal-free MoS over spent catalysts via a hydrothermal method that showed exceptional performance regarding the hydrogen evolution reaction (HER) and the oxygen evolution reaction (OER). At 25 mA cm, phenomenal OER overpotentials (η) of 128 and 154 mV and modest HER overpotentials of 186 and 207 mV were achieved for MoS@CNF and MoS@GC, respectively. Moreover, OER Tafel slopes of 41 and 71 mV dec and HER Tafel slopes of 99 and 107 mV dec were obtained for MoS@CNF and MoS@GC, respectively. Furthermore, the synthesized catalysts exhibited good long-term durability for about 18 h at 100 μA cm with unnoticeable changes in the linear sweep voltammetry (LSV) curve of the HER after 1000 cycles. The carbon on the spent catalyst increased the conductivity, while MoS enhanced the electrocatalytic activity; hence, the synergistic effect of both materials resulted in enhanced electrocatalysts for overall water splitting. This work of synthesizing enhanced nanostructured electrocatalysts with minimal usage of inexpensive MoS gives a rationale for engineering potent greener electrocatalysts.

摘要

设计一种对电化学水分解具有有效电催化活性和高稳定性的更环保双功能电催化剂极其审慎且极具挑战性。由于每年有数百吨催化剂因碳沉积而失活,在此,我们提出了一种策略,以重新利用因形成石墨碳(GC)和碳纳米纤维(CNF)而失活的废甲烷重整催化剂。通过水热法在废催化剂上原位沉积无贵金属的MoS成功合成了一种电催化剂,该电催化剂在析氢反应(HER)和析氧反应(OER)方面表现出卓越性能。在25 mA cm时,MoS@CNF和MoS@GC的OER过电位(η)分别达到了128和154 mV,HER过电位分别为186和207 mV。此外,MoS@CNF和MoS@GC的OER塔菲尔斜率分别为41和71 mV dec,HER塔菲尔斜率分别为99和107 mV dec。此外,合成的催化剂在100 μA cm下表现出约18 h的良好长期耐久性,在1000次循环后HER的线性扫描伏安法(LSV)曲线变化不明显。废催化剂上的碳提高了导电性,而MoS增强了电催化活性;因此,两种材料的协同效应产生了用于整体水分解的增强型电催化剂。这项以最少使用廉价MoS合成增强型纳米结构电催化剂的工作为设计高效更环保电催化剂提供了理论依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/06fa/8388002/eaf9f5e69c92/ao1c01558_0002.jpg

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