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Energy Interplay in Materials: Unlocking Next-Generation Synchronous Multisource Energy Conversion with Layered 2D Crystals
Advanced Materials ( IF 27.4 ) Pub Date : 2022-08-02 , DOI: 10.1002/adma.202203849
Alexander Corletto 1 , Amanda V Ellis 1 , Nick A Shepelin 2 , Marco Fronzi 3 , David A Winkler 4, 5, 6 , Joseph G Shapter 7 , Peter C Sherrell 1
Affiliation  

Layered 2D crystals have unique properties and rich chemical and electronic diversity, with over 6000 2D crystals known and, in principle, millions of different stacked hybrid 2D crystals accessible. This diversity provides unique combinations of properties that can profoundly affect the future of energy conversion and harvesting devices. Notably, this includes catalysts, photovoltaics, superconductors, solar-fuel generators, and piezoelectric devices that will receive broad commercial uptake in the near future. However, the unique properties of layered 2D crystals are not limited to individual applications and they can achieve exceptional performance in multiple energy conversion applications synchronously. This synchronous multisource energy conversion (SMEC) has yet to be fully realized but offers a real game-changer in how devices will be produced and utilized in the future. This perspective highlights the energy interplay in materials and its impact on energy conversion, how SMEC devices can be realized, particularly through layered 2D crystals, and provides a vision of the future of effective environmental energy harvesting devices with layered 2D crystals.

中文翻译:

材料中的能量相互作用:利用分层二维晶体解锁下一代同步多源能量转换

层状二维晶体具有独特的特性和丰富的化学和电子多样性,已知有超过 6000 种二维晶体,​​原则上可以使用数百万种不同的堆叠混合二维晶体。这种多样性提供了独特的特性组合,可以深刻影响能量转换和收集设备的未来。值得注意的是,这包括催化剂、光伏、超导体、太阳能燃料发电机和压电设备,这些设备将在不久的将来获得广泛的商业应用。然而,层状二维晶体的独特性能并不局限于单个应用,它们可以在多个能量转换应用中同步实现卓越的性能。这种同步多源能量转换 (SMEC) 尚未完全实现,但为未来设备的生产和使用方式提供了真正的游戏规则改变者。这一观点强调了材料中的能量相互作用及其对能量转换的影响,以及如何实现 SMEC 设备,特别是通过分层二维晶体,​​并为具有分层二维晶体的有效环境能量收集设备的未来提供了愿景。
更新日期:2022-08-02
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