机械化学
球磨机
微尺度化学
制氢
氢
纳米技术
超临界流体
材料科学
分解水
氢经济
能量载体
工艺工程
能量转换
绿色化学
氢燃料
化学工程
可持续能源
化学过程
纳米颗粒
多硫化物
太阳能
化学
氢气储存
纳米材料
析氧
化学能
可再生能源
可扩展性
化学反应
出处
期刊:Chemsuschem
[Wiley]
日期:2026-02-16
卷期号:19 (4): e202502650-e202502650
被引量:1
标识
DOI:10.1002/cssc.202502650
摘要
Mechanochemistry in planetary ball mills is a transformative and sustainable chemical process by which mechanical impact is converted into reaction‐driving energy. High‐energy collisions between balls, analogous to meteorite impacts on Earth, generate transient extreme pressures (∼10 GPa) and temperatures (∼1500°C) and supercritical water in microscale “hot spots,” allowing reactions once restricted to high‐temperature or solvent‐intensive laboratory or industrial conditions to proceed. This platform achieves hydrogen evolution efficiencies comparable or superior to electrolysis and even realizes a new phenomenon—room‐temperature thermochemical water‐splitting cycles—without CO 2 emissions, oxygen separation systems, or external heaters. Furthermore, the mechanochemical activation of TiO 2 yields photocatalysts with markedly enhanced absorption from the UV to the near‐infrared through defect and polymorph engineering. Beyond energy applications, the direct halogen‐free, HF‐free synthesis of alkoxysilanes provides a green, scalable route to value‐added chemicals with the coproduction of hydrogen at room temperature. These processes exploit abundant or waste materials, operate in compact setups, and consume very little energy, suggesting their potential for distributed fuel generation and sustainable materials manufacturing. Planetary ball milling can therefore offer a generalizable framework for green chemistry, bridging solid‐state reaction engineering with energy conversion and functional materials synthesis to provide practical routes toward low‐carbon, scalable technologies.
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