论文标题
基于石墨烯的微波电路中的热载体热化和约瑟夫森电感温度计
Hot Carrier Thermalization and Josephson Inductance Thermometry in a Graphene-based Microwave Circuit
论文作者
论文摘要
由于其出色的电子和热性能,石墨烯是降压法,量热法和光子检测的关键材料。但是,尽管石墨烯相对简单的电子结构,但在实验上仍然难以捉摸,导致热量从电子到晶格的物理过程仍然难以捉摸。在这里,我们通过将其集成在与微波谐振器相连的多末端超导装置中,来测量固定在氮化硼(HBN)中的低端阶石墨烯的热响应。这项技术使我们能够同时将焦油的热力施加到石墨烯薄片上,同时进行电子温度的校准读数。我们以高精度探测电子和孔的热速率,并观察到与在石墨烯和超导导线之间界面上发生的谐振电子 - 音波偶联过程所支配的冷却指数一致的。此处使用的技术适用于广泛的半导体 - 渗透界面异质结构,并为下一代热探测器必不可少的热力化途径提供了新的见解。
Due to its exceptional electronic and thermal properties, graphene is a key material for bolometry, calorimetry, and photon detection. However, despite graphene's relatively simple electronic structure, the physical processes responsible for the transport of heat from the electrons to the lattice are experimentally still elusive. Here, we measure the thermal response of low-disorder graphene encapsulated in hexagonal boron nitride (hBN) by integrating it within a multi-terminal superconducting device coupled to a microwave resonator. This technique allows us to simultaneously apply Joule heat power to the graphene flake while performing calibrated readout of the electron temperature. We probe the thermalization rates of both electrons and holes with high precision and observe a thermalization scaling exponent consistent with cooling dominated by resonant electron-phonon coupling processes occurring at the interface between graphene and superconducting leads. The technique utilized here is applicable for wide range of semiconducting-superconducting interface heterostructures and provides new insights into the thermalization pathways essential for the next-generation thermal detectors.