Highly Salt-tolerant hydrogen evolution reaction based on dendritic urchin-like MoC/MoS2 heterojunction in seawater

电解质 海水 制氢 催化作用 纳米棒 化学工程 过电位 材料科学 电解 阳极 热液循环 纳米技术 电极 化学 电化学 有机化学 生态学 生物 物理化学 工程类
作者
Wenpeng Wu,Xinqun Zhang,Yukun Xiao,Zhihua Cheng,Yang Tian,Jinsheng Lv,Man Yuan,Jiajia Liu,Yang Zhao
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:480: 148085-148085 被引量:12
标识
DOI:10.1016/j.cej.2023.148085
摘要

The direct electrolysis of abundant near-neutral seawater resources for hydrogen production faces significant challenges due to insufficient catalyst activity and salt toxicity. Herein, we demonstrate a novel dendritic urchin-like MoC/MoS2 heterojunction in-situ formed on carbon cloth (CC@MoC/MoS2-H) through a combination of hydrothermal and high-temperature annealing processes. This unique dendritic urchin-like structure consists of numerous nanorods on carbon cloth, which enhances the catalytic active sites and provides space for efficient bubble release. The resulting CC@MoC/MoS2-H exhibits superior catalytic performance, with an overpotential of 91 mV and 136 mV at the current density of 10 mA cm−2 in the 1 M PBS electrolyte and natural seawater, respectively, surpassesing that of most non-noble metal compounds reported previously. Finite element simulations reveal that the urchin-like structure has significantly higher bubble release capacity compared to the randomly stacked structure. Additionally, the urchin-like structure demonstrates substantially greater current density retention under electrolytic conditions designed to simulate salt accumulation, in comparison to the small-size structure. Furthermore, the average H2 production efficiency of 78,493 μmol h−1 g−1 was evaluated for three consecutive hours using commercial solar panels rated at 2 V on a large-scale electrode assembly from seawater, which is comparable to the present photocatalytic hydrogen production efficiency. This work opens new avenues for the development of catalytic structures compatible with seawater.
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