Jiang Yue, Liang Jun, Zhuo Fenglin, Ma Hongyang, Mofarah Sajjad S, Sorrell Charles C, Wang Danyang, Koshy Pramod
School of Materials Science and Engineering, UNSW Sydney, Sydney, NSW 2052, Australia.
ACS Nano. 2025 May 20;19(19):18037-18074. doi: 10.1021/acsnano.5c02660. Epub 2025 May 6.
Mechanically driven catalysis (MDC) has emerged as an effective strategy for environmental remediation, renewable energy conversion, and cancer therapy; this functions by converting mechanical forces to drive catalytic reactions. This review examines four primary mechanisms, namely, piezocatalysis, flexocatalysis, tribocatalysis, and sonocatalysis, each involving specific catalytic pathways for harnessing mechanical energy at the nanoscale. However, significant challenges arise in decoupling the effects related to each individual mechanism in order to better understand and manipulate their synergies. In this review, the fundamental principles underpinning MDC are systematically interpreted. Beyond mechanistic insights, recent advancements in performance enhancement strategies for these catalysts are highlighted. Potential applications using these mechanistic approaches in environmental remediation (pollutant and antibiotic degradation and microbial disinfection), renewable energy conversion (hydrogen production and greenhouse gas conversion), and biomedical treatments (particularly cancer therapy) are discussed. Finally, the mechanistic synergies and limiting factors are explored, addressing challenges related to the overlooked combined effects of ultrasound as the activation source, complexities in mechanical force interactions at the nanoscale, and the need for targeted application strategies. Additionally, the industrial potential of these catalytic processes with consideration to scalability and practical deployment is evaluated. While challenges remain, this review provides a roadmap for advancing mechanically driven catalyst design and implementation toward real-world applications, offering potential into its future trajectory and transformative impact across numerous fields.
机械驱动催化(MDC)已成为环境修复、可再生能源转换和癌症治疗的有效策略;其通过转换机械力来驱动催化反应发挥作用。本综述研究了四种主要机制,即压电催化、挠曲催化、摩擦催化和声催化,每种机制都涉及在纳米尺度上利用机械能的特定催化途径。然而,为了更好地理解和操纵它们的协同作用,在解耦与每种单独机制相关的效应方面出现了重大挑战。在本综述中,系统地解释了支撑MDC的基本原理。除了机理见解之外,还强调了这些催化剂性能增强策略的最新进展。讨论了使用这些机理方法在环境修复(污染物和抗生素降解以及微生物消毒)、可再生能源转换(制氢和温室气体转换)和生物医学治疗(特别是癌症治疗)方面的潜在应用。最后,探讨了机理协同作用和限制因素,解决了与作为激活源的超声波被忽视的综合效应、纳米尺度上机械力相互作用的复杂性以及针对性应用策略的需求相关的挑战。此外,评估了这些催化过程在可扩展性和实际部署方面的工业潜力。尽管挑战依然存在,但本综述为推动机械驱动催化剂的设计和实施以实现实际应用提供了路线图,展示了其未来发展轨迹以及在众多领域的变革性影响。