商品化学品的电热合成

Qi Dong, Shu Hu, Liangbing Hu
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摘要

近几十年来,随着可再生电力的日益普及和环境挑战的日益认识,商品化学品的电热合成引起了人们的极大兴趣。典型的电热方法,如焦耳加热、微波、感应加热和等离子体,已经迅速从毫米大小的微反应器发展到模块化甚至工业规模的系统。与此同时,新的化学工程概念,如利用纳秒到毫秒长的能量脉冲对非平衡化学反应进行动态和可编程操作,通过给各种反应器组件(例如,反应器壁,催化剂床或多孔介质中的反应物)通电进行空间和时间加热,以及场增强反应和催化,已经被发现来改善合成结果。尽管这一领域进展迅速,但仍存在许多知识差距和技术障碍。在这里,我们回顾了关键的工程进展,分析了未解决的挑战,并讨论了商品化学品电热合成的潜在方向,以实现其在未来化学制造中的更广泛应用。随着可再生电力的日益普及和环境挑战的日益认识,商品化学品的电热合成受到了极大的关注。本展望讨论了商品化学品电热合成的关键工程进展、未解决的挑战和潜在方向,以期在未来的化学制造中得到更广泛的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Electrothermal synthesis of commodity chemicals
Electrothermal synthesis of commodity chemicals has received notable interest in recent decades as renewable electricity becomes more available and environmental challenges are increasingly recognized. Representative electrothermal approaches, such as Joule heating, microwaves, induction heating and plasma, have rapidly evolved from operating in millimeter-sized micro-reactors toward modular and even industrial-scale systems. Meanwhile, new chemical engineering concepts, such as dynamic and programmable operation for non-equilibrium chemical reactions using nanosecond- to millisecond-long energy pulsing, spatial and temporal heating by electrifying various reactor components (for example, the reactor walls, catalyst bed or reactant in porous media), and field-enhanced reactions and catalysis, have been discovered to improve synthesis outcomes. Despite the rapid progress of this field, there remain many knowledge gaps and technical hurdles. Here we review the critical engineering advances, analyze the unaddressed challenges and discuss the potential directions for the electrothermal synthesis of commodity chemicals toward its broader implementation for future chemical manufacturing. Electrothermal synthesis of commodity chemicals has received notable interest as renewable electricity becomes more available and environmental challenges are increasingly recognized. This Perspective discusses critical engineering advances, unaddressed challenges and potential directions for the electrothermal synthesis of commodity chemicals toward its broader implementation for future chemical manufacturing.
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