De Simoni Giorgio, Paolucci Federico, Solinas Paolo, Strambini Elia, Giazotto Francesco
NEST, Istituto Nanoscienze-CNR and Scuola Normale Superiore, Pisa, Italy.
SPIN-CNR, Genova, Italy.
Nat Nanotechnol. 2018 Sep;13(9):802-805. doi: 10.1038/s41565-018-0190-3. Epub 2018 Jul 2.
In their original formulation of superconductivity, the London brothers predicted the exponential suppression of an electrostatic field inside a superconductor over the so-called London penetration depth, λ. Despite a few experiments indicating hints of perturbation induced by electrostatic fields, no clue has been provided so far on the possibility to manipulate metallic superconductors via the field effect. Here, we report field-effect control of the supercurrent in all-metallic transistors made of different Bardeen-Cooper-Schrieffer superconducting thin films. At low temperature, our field-effect transistors show a monotonic decay of the critical current under increasing electrostatic field up to total quenching for gate voltage values as large as ±40 V in titanium-based devices. This bipolar field effect persists up to 85% of the critical temperature (0.41 K), and in the presence of sizable magnetic fields. A similar behaviour is observed in aluminium thin-film field-effect transistors. A phenomenological theory accounts for our observations, and points towards the interpretation in terms of an electric-field-induced perturbation propagating inside the superconducting film. In our understanding, this affects the pairing potential and quenches the supercurrent. These results could represent a groundbreaking asset for the realization of all-metallic superconducting field-effect electronics and leading-edge quantum information architectures.
在超导性的最初表述中,伦敦兄弟预测超导体内部的静电场会在所谓的伦敦穿透深度λ上呈指数衰减。尽管有一些实验暗示了静电场引起的微扰,但迄今为止,关于通过场效应操纵金属超导体的可能性尚无任何线索。在此,我们报告了由不同的巴丁 - 库珀 - 施里弗超导薄膜制成的全金属晶体管中超电流的场效应控制。在低温下,我们的场效应晶体管在静电场增加时临界电流呈现单调衰减,对于基于钛的器件,栅极电压高达±40 V时临界电流会完全淬灭。这种双极场效应在高达临界温度(约0.41 K)的约85%时以及存在相当大的磁场时仍然存在。在铝薄膜场效应晶体管中也观察到了类似行为。一种唯象理论解释了我们的观察结果,并指向了根据在超导薄膜内部传播的电场诱导微扰进行的解释。据我们理解,这会影响配对势并淬灭超电流。这些结果可能是实现全金属超导场效应电子学和前沿量子信息架构的一项开创性成果。