Xue Xiaofeng, Li Bowen
Institute for Frontier Science, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China.
Nanomaterials (Basel). 2025 Mar 20;15(6):472. doi: 10.3390/nano15060472.
Nanostructured materials have garnered significant attention for their unique properties, such as the high surface area and enhanced reactivity, making them ideal for electrocatalysis. Among these, perovskite oxides, with compositional and structural flexibility, stand out for their remarkable catalytic performance in energy conversion and storage technologies. Their diverse composition and tunable electronic structures make them promising candidates for key electrochemical reactions, including the oxygen evolution reaction (OER), hydrogen evolution reaction (HER), and carbon dioxide reduction (CORR). Nanostructured perovskites offer advantages such as high intrinsic activity and enhanced mass/charge transport, which are crucial for improving electrocatalytic performance. In view of the rapid development of nanostructured perovskites over past few decades, this review aims to provide a detailed evaluation of their synthesis methods, including the templating (soft, hard, colloidal), hydrothermal treatments, electrospinning, and deposition approaches. In addition, in-depth evaluations of the fundamentals, synthetic strategies, and applications of nanostructured perovskite oxides for OER, HER, and CORR are highlighted. While progress has been made, further research is needed to expand the synthetic methods to create more complex perovskite structures and improve the mass-specific activity and stability. This review offers insights into the potential of nanostructured perovskite oxides in electrocatalysis and provides potential perspectives for the ongoing research endeavor on the nanostructural engineering of perovskites.
纳米结构材料因其独特性能,如高比表面积和增强的反应活性,而备受关注,使其成为电催化的理想材料。其中,具有成分和结构灵活性的钙钛矿氧化物,在能量转换和存储技术中因其卓越的催化性能而脱颖而出。它们多样的成分和可调节的电子结构使其成为关键电化学反应的有前途的候选材料,包括析氧反应(OER)、析氢反应(HER)和二氧化碳还原反应(CORR)。纳米结构钙钛矿具有诸如高本征活性和增强的质量/电荷传输等优点,这对于提高电催化性能至关重要。鉴于纳米结构钙钛矿在过去几十年中的快速发展,本综述旨在对其合成方法进行详细评估,包括模板法(软模板、硬模板、胶体模板)、水热处理、静电纺丝和沉积方法。此外,还重点深入评估了纳米结构钙钛矿氧化物用于OER、HER和CORR的基本原理、合成策略及应用。虽然已取得进展,但仍需进一步研究以扩展合成方法,创造更复杂的钙钛矿结构,并提高质量比活性和稳定性。本综述深入探讨了纳米结构钙钛矿氧化物在电催化中的潜力,并为正在进行的钙钛矿纳米结构工程研究提供了潜在的视角。