Device Physics of Complex Materials, Zernike Institute for Advanced Materials, Nijenborgh 4, 9747 AG, Groningen, Netherlands.
High Field Magnet Laboratory, European Magnetic Field Laboratory (HFML-EMFL), and Institute of Molecules and Materials, Radboud University, Toernooiveld 7, 6525 ED Nijmegen, Netherlands.
Science. 2015 Dec 11;350(6266):1353-7. doi: 10.1126/science.aab2277. Epub 2015 Nov 12.
The Zeeman effect, which is usually detrimental to superconductivity, can be strongly protective when an effective Zeeman field from intrinsic spin-orbit coupling locks the spins of Cooper pairs in a direction orthogonal to an external magnetic field. We performed magnetotransport experiments with ionic-gated molybdenum disulfide transistors, in which gating prepared individual superconducting states with different carrier dopings, and measured an in-plane critical field B(c2) far beyond the Pauli paramagnetic limit, consistent with Zeeman-protected superconductivity. The gating-enhanced B(c2) is more than an order of magnitude larger than it is in the bulk superconducting phases, where the effective Zeeman field is weakened by interlayer coupling. Our study provides experimental evidence of an Ising superconductor, in which spins of the pairing electrons are strongly pinned by an effective Zeeman field.
塞曼效应通常对超导性有害,但当来自固有自旋轨道耦合的有效塞曼场将库珀对的自旋锁定在与外磁场正交的方向时,它可以起到很强的保护作用。我们在离子门控二硫化钼晶体管中进行了磁输运实验,其中门控用不同载流子掺杂制备了单个超导态,并测量了平面内临界场 B(c2),远远超过了泡利顺磁极限,与塞曼保护超导性一致。与体超导相相比,栅极增强的 B(c2)大一个数量级以上,在体超导相中,有效塞曼场被层间耦合削弱。我们的研究提供了实验证据,证明了一种伊辛超导体,其中配对电子的自旋被有效塞曼场强烈固定。