Pham Hau Quoc, Dao Thi-Bich-Ngoc, Nguyen Anh Quoc Khuong, Huynh Quyen, Huynh Tai Thien
Future Materials & Devices Lab., Institute of Fundamental and Applied Sciences, Duy Tan University, Ho Chi Minh City 70000, Viet Nam; The Faculty of Environmental and Chemical Engineering, Duy Tan University, Da Nang 50000, Viet Nam; Ho Chi Minh City University of Natural Resources and Environment (HCMUNRE), Ho Chi Minh City 70000, Viet Nam.
Future Materials & Devices Lab., Institute of Fundamental and Applied Sciences, Duy Tan University, Ho Chi Minh City 70000, Viet Nam; The Faculty of Environmental and Chemical Engineering, Duy Tan University, Da Nang 50000, Viet Nam.
Adv Colloid Interface Sci. 2025 Jul;341:103493. doi: 10.1016/j.cis.2025.103493. Epub 2025 Mar 25.
Designing advanced materials with a trade-off between overall electrocatalytic efficiency and economic cost for electrochemical hydrogen production is crucial to overcoming the current energy crisis and environmental issues. On the more 10-year journey since the discovery, transition-metal carbides/nitrides nanosheets (MXenes) have increasingly attracted attention as potential materials toward hydrogen/oxygen evolution reactions (HER/OER) because of their unique physical and chemical characteristics, but the layered restacking and low intrinsic electrochemical activity are dragging them out water-splitting technology. Doping MXenes with nitrogen atoms has recently been introduced as a facile but efficient strategy to accelerate the HER/OER efficiency by the optimization of electronic structure, surface terminations, and adsorption/desorption energies of intermediates on pristine MXenes. However, a comprehensive evaluation of the doping mechanism and content-structure-performance relationship of N-doped 2D MXene-related catalysts is still lacking. Thus, we herein systematically summarize synthetic strategies, theoretical calculations, properties, and applications of nitrogen-doped 2D MXenes for the HER and OER to give more fundamental insights into physicochemical characteristics of nitrogen-doped 2D MXenes to further design next-generation catalysts for the electrochemical hydrogen production and other applications.
设计出在整体电催化效率和经济成本之间进行权衡的先进材料用于电化学制氢,对于克服当前的能源危机和环境问题至关重要。自发现以来的十多年间,过渡金属碳化物/氮化物纳米片(MXenes)因其独特的物理和化学特性,作为潜在的析氢/析氧反应(HER/OER)材料越来越受到关注,但层状堆叠和低本征电化学活性阻碍了它们在水分解技术中的应用。最近,通过优化原始MXenes的电子结构、表面端基以及中间体的吸附/解吸能,引入氮原子掺杂MXenes成为一种简便而有效的提高HER/OER效率的策略。然而,目前仍缺乏对氮掺杂二维MXene相关催化剂的掺杂机理以及含量-结构-性能关系的全面评估。因此,我们在此系统地总结了氮掺杂二维MXenes用于HER和OER的合成策略、理论计算、性质及应用,以便更深入地了解氮掺杂二维MXenes的物理化学特性,并进一步设计用于电化学制氢及其他应用的下一代催化剂。