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Liquid-phase thermal decomposition-derived nanoparticles for electrocatalytic applications

合理设计 氧还原反应 纳米颗粒 纳米技术 催化作用 材料科学 还原(数学) 热分解 电催化剂 分解 过程(计算) 热稳定性 理论(学习稳定性) 密度泛函理论 计算机科学 生化工程 比例(比率) 工艺工程 热的 碳纤维 析氧 材料设计 生产成本 降级(电信) 设计要素和原则
作者
Muhammad Ibrar Ahmed,Rana Sami Ul Haq,Shuzhen Zhang,Yong Zhao,Cheng Wang,Mohammed Fawaz,Arsh Ismaili,Liang Qiao,J. Kennedy,Ajayan Vinu,Jiabao Yi
出处
期刊:Materials Today [Elsevier BV]
卷期号:97: 103342-103342
标识
DOI:10.1016/j.mattod.2026.103342
摘要

Driven by the demand for rational nanoparticle (NP) design in electrocatalysis-based energy applications, various synthesis methods have been developed. Among these methods, liquid-phase thermal decomposition (LTD) is a unique and industry-friendly approach owing to its low cost and easy scalability, and most importantly, the size, shape, and stability of the nanoparticles (NPs) can be easily controlled with the simple adjustment of the reaction parameters. This review provides a comprehensive discussion and up-to-date perspectives on the importance of LTD-derived NPs (LTDNPs) in promoting electrocatalytic processes. First, we explore the fundamentals related to the LTD method, emphasizing how reaction parameters such as synthesis temperature, time, and atmosphere are critical to the properties of NPs. This evaluation analyzes how intrinsic and extrinsic electrocatalytic properties are influenced by the size, shape, and composition of the NPs. We also summarize and analyze rational catalyst designs through density functional theory and machine learning to illuminate the structure-to-performance relationship. In addition, the review elucidates the effectiveness of these NPs in electrocatalytic processes such as the oxygen reduction reaction (ORR), oxygen/hydrogen evolution reactions (OER/HER), nitrogen reduction reaction (NRR), and carbon dioxide reduction reaction (CO 2 RR). Furthermore, we discuss insights concerning the stability and long-term performance of LTDNPs in relation to various degradation mechanisms. In terms of economic considerations, comparisons are also made with NPs generated by alternative methods. Finally, we outline numerous directions for advanced catalyst design by LTD using design of experiments (DOE) and theoretical modeling to scale up this process with device integration. This review serves as a comprehensive reference for investigators aiming to utilize the full potential of LTDNPs in electrocatalysis.

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