闪光灯(摄影)
纳米技术
焦耳加热
可扩展性
灵活性(工程)
材料科学
工艺工程
能量转换
焦耳(编程语言)
高效能源利用
工程物理
可持续能源
亚稳态
计算机科学
系统工程
瞬态(计算机编程)
相(物质)
焦耳效应
钥匙(锁)
比例(比率)
生化工程
反应堆设计
储能
能量(信号处理)
转化式学习
范围(计算机科学)
超短脉冲
机械工程
工程类
作者
Jiawei Xiao,Yun Chen,Liang Cheng,Hengxu Wu,Maoxiang Hou,Li Ma,Xin Chen,Ching‐Ping Wong
出处
期刊:Small methods
[Wiley]
日期:2025-11-20
卷期号:9 (12): e01678-e01678
被引量:8
标识
DOI:10.1002/smtd.202501678
摘要
Abstract High‐temperature synthesis methods play a pivotal role in the development of advanced functional materials. However, conventional approaches often suffer from high energy consumption, prolonged reaction durations, and limited control over metastable phase formation. Flash Joule heating (FJH), an electrothermally driven transient energy conversion technique, applies short‐duration (<10s), high‐intensity electrical pulses (>2000 W) to achieve ultrafast heating and cooling (typically >10 2 –10 5 K s −1 ), with peak temperatures reaching up to 3,500 °C, and energy utilization efficiency is close to 100%. This non‐equilibrium thermodynamic environment facilitates the rapid transformation of diverse precursors into carbon‐based and inorganic materials, enabling highly tunable compositions, multiscale architectures, and abundant defect states. As such, FJH provides a sustainable and scalable platform for advanced materials manufacturing, while also demonstrating significant potential in waste valorization and environmental remediation. This review systematically outlines the fundamental principles and reactor configurations of FJH, elucidates the intrinsic mechanisms underlying structure reconstruction during processing, highlights the technological advantages in various application scenarios, and discusses the key challenges that must be addressed for FJH to become a central strategy in advanced materials engineering and sustainable technology development.
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