Carnicom Elizabeth M, Xie Weiwei, Klimczuk Tomasz, Lin Jingjing, Górnicka Karolina, Sobczak Zuzanna, Ong Nai Phuan, Cava Robert J
Department of Chemistry, Princeton University, Princeton, NJ 08544, USA.
Department of Chemistry, Louisiana State University, Baton Rouge, LA 70803, USA.
Sci Adv. 2018 May 4;4(5):eaar7969. doi: 10.1126/sciadv.aar7969. eCollection 2018 May.
It is a fundamental truth in solid compounds that the physical properties follow the symmetry of the crystal structure. Nowhere is the effect of symmetry more pronounced than in the electronic and magnetic properties of materials-even the projection of the bulk crystal symmetry onto different crystal faces is known to have a substantial impact on the surface electronic states. The effect of bulk crystal symmetry on the properties of superconductors is widely appreciated, although its study presents substantial challenges. The effect of a lack of a center of symmetry in a crystal structure, for example, has long been understood to necessitate that the wave function of the collective electron state that gives rise to superconductivity has to be more complex than usual. However, few nonhypothetical materials, if any, have actually been proven to display exotic superconducting properties as a result. We introduce two new superconductors that in addition to having noncentrosymmetric crystal structures also have chiral crystal structures. Because the wave function of electrons in solids is particularly sensitive to the host material's symmetry, crystal structure chirality is expected to have a substantial effect on their superconducting wave functions. Our two experimentally obtained chiral noncentrosymmetric superconducting materials have transition temperatures to superconductivity that are easily experimentally accessible, and our basic property characterization suggests that their superconducting properties may be unusual. We propose that their study may allow for a more in-depth understanding of how chirality influences the properties of superconductors and devices that incorporate them.
在固体化合物中,一个基本事实是物理性质遵循晶体结构的对称性。对称性的影响在材料的电子和磁性性质中最为显著——甚至已知体晶体对称性在不同晶面上的投影对表面电子态有重大影响。体晶体对称性对超导体性质的影响已得到广泛认可,尽管对其研究面临重大挑战。例如,长期以来人们就明白,晶体结构中缺乏对称中心必然导致产生超导性的集体电子态的波函数比平常更复杂。然而,实际上几乎没有(如果有的话)非假设性材料被证明因此展现出奇异的超导特性。我们引入了两种新型超导体,它们除了具有非中心对称晶体结构外,还具有手性晶体结构。由于固体中电子的波函数对主体材料的对称性特别敏感,晶体结构手性预计会对其超导波函数产生重大影响。我们通过实验获得的这两种手性非中心对称超导材料具有易于通过实验获取的超导转变温度,并且我们的基本性质表征表明它们的超导性质可能不同寻常。我们提出,对它们的研究可能有助于更深入地理解手性如何影响超导体以及包含它们的器件的性质。