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Observing of the super-Planckian near-field thermal radiation between graphene sheets

机译:观察石墨烯片之间的超普朗克近场热辐射

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摘要

Thermal radiation can be substantially enhanced in the near-field scenario due to the tunneling of evanescent waves. Monolayer graphene could play a vital role in this process owing to its strong infrared plasmonic response, however, which still lacks an experimental verification due to the technical challenges. Here, we manage to make a direct measurement about plasmon-mediated thermal radiation between two macroscopic graphene sheets using a custom-made setup. Super-Planckian radiation with efficiency 4.5 times larger than the blackbody limit is observed at a 430-nm vacuum gap on insulating silicon hosting substrates. The positive role of graphene plasmons is further confirmed on conductive silicon substrates which have strong infrared loss and thermal emittance. Based on these, a thermophotovoltaic cell made of the graphene–silicon heterostructure is lastly discussed. The current work validates the classic thermodynamical theory in treating graphene and also paves a way to pursue the application of near-field thermal management.
机译:由于e逝波的隧穿,在近场场景中可以显着增强热辐射。由于其强烈的红外等离子体响应,单层石墨烯可能在此过程中起至关重要的作用,但是由于技术挑战,单层石墨烯仍缺乏实验验证。在这里,我们设法使用定制的设置直接测量两个宏观石墨烯片之间的等离激元介导的热辐射。在绝缘硅承载衬底上的430 nm真空间隙处观察到的超普朗克辐射效率是黑体极限的4.5倍。石墨烯等离子体激元在具有强红外损耗和热发射率的导电硅基板上的进一步作用得到了证实。基于这些,最后讨论了由石墨烯-硅异质结构制成的热光伏电池。当前的工作验证了经典的热力学理论在石墨烯的处理中,并为追求近场热管理的应用铺平了道路。

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