论文标题
双层热电学双极式 - 格拉烯 - 超导管隧道连接
Bipolar Thermoelectricity in Bilayer-Graphene--Superconductor Tunnel Junctions
论文作者
论文摘要
我们研究了由2D碳基材料和超导体组成的杂化纳米电视的热电特性。该系统呈现非线性双极热电学,这是由双层石墨烯(BLG)和Bardeen-Cooper-Schrieffer(BCS)超管制器之间的隧道连接中的颗粒孔(pH)对称性自发断裂引起的。在此方案中,在SIS的连接中预测和观察到的非线性热电效应不受约瑟夫森耦合的竞争效应的影响。从基本的角度来看,这种效果的最吸引人的特征是其双极性。打开和控制BLG间隙的能力可确保改进的热电性能,对于Seebeck系数和1 nw/$μ$ M $ M $ M $^2 $的功率密度最高可达到1 mV/k,用于数十几个kelvins的温度梯度。此外,外部控制的门控也可以粘贴BLG,否则它本质上是对称的,即使在受控抑制pH对称性的情况下,也使我们有机会研究双极热电学。由于可用的纳米制作技术,该系统的预测鲁棒性可以在不久的将来促进进一步的实验研究和应用。
We investigate the thermoelectric properties of a hybrid nanodevice composed by a 2D carbon based material and a superconductor. This system presents nonlinear bipolar thermoelectricity as induced by the spontaneous breaking of the Particle-Hole (PH) symmetry in a tunnel junction between a BiLayer Graphene (BLG) and a Bardeen-Cooper-Schrieffer (BCS) superconductor. In this scheme, the nonlinear thermoelectric effect, predicted and observed in SIS' junctions is not affected by the competitive effect of the Josephson coupling. From a fundamental perspective, the most intriguing feature of this effect is its bipolarity. The capability to open and control the BLG gap guarantees improved thermoelectric performances, that reach up to 1 mV/K regarding the Seebeck coefficient and a power density of 1 nW/$μ$m$^2$ for temperature gradients of tens of Kelvins. Furthermore, the externally controlled gating can also dope the BLG, which is otherwise intrinsically PH symmetric, giving us the opportunity to investigate the bipolar thermoelectricity even in presence of a controlled suppression of the PH symmetry. The predicted robustness of this system could foster further experimental investigations and applications in the near future, thanks to the available techniques of nano-fabrication.