Wood‐Structured Nanomaterials as Highly Efficient, Self‐Standing Electrocatalysts for Water Splitting

分解水 纳米材料 纳米技术 析氧 电解水 材料科学 催化作用 电催化剂 电解 可再生能源 环境友好型 电化学 电极 化学 光催化 工程类 物理化学 生态学 生物化学 电气工程 电解质 生物
作者
Jianlin Huang,Zhikai Shi,Chengwei Mao,Gaixiu Yang,Yan Chen
出处
期刊:Small [Wiley]
卷期号:20 (40): e2402511-e2402511 被引量:27
标识
DOI:10.1002/smll.202402511
摘要

), an ideal energy carrier for the future. However, the efficiency and economic viability of large-scale water electrolysis depend on electrocatalysts that can efficiently accelerate the electrochemical reactions taking place at the two electrodes. Wood-derived nanomaterials are well-suited for serving as EWS catalysts because of their hierarchically porous structure with high surface area and low tortuosity, compositional tunability, cost-effectiveness, and self-standing integral electrode configuration. Here, recent advancements in the design and synthesis of wood-structured nanomaterials serving as advanced electrocatalysts for water splitting are summarized. First, the design principles and corresponding strategies toward highly effective wood-structured electrocatalysts (WSECs) are emphasized. Then, a comprehensive overview of current findings on WSECs, encompassing diverse structural designs and functionalities such as supported-metal nanoparticles (NPs), single-atom catalysts (SACs), metal compounds, and heterostructured electrocatalysts based on engineered wood hosts are presented. Subsequently, the application of these WSECs in various aspects of water splitting, including the hydrogen evolution reaction (HER), oxygen evolution reaction (OER), overall water splitting (OWS), and hybrid water electrolysis (HWE) are explored. Finally, the prospects, challenges, and opportunities associated with the broad application of WSECs are briefly discussed. This review aims to provide a comprehensive understanding of the ongoing developments in water-splitting catalysts, along with outlining design principles for the future development of WSECs.
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