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一种表面定制的、纯电子的、斑驳的金属-绝缘体转变。

A surface-tailored, purely electronic, mott metal-to-insulator transition.

作者信息

Moore R G, Zhang Jiandi, Nascimento V B, Jin R, Guo Jiandong, Wang G T, Fang Z, Mandrus D, Plummer E W

机构信息

Department of Physics and Astronomy, University of Tennessee, Knoxville, TN 37996, USA.

出版信息

Science. 2007 Oct 26;318(5850):615-9. doi: 10.1126/science.1145374.

Abstract

Mott transitions, which are metal-insulator transitions (MITs) driven by electron-electron interactions, are usually accompanied in bulk by structural phase transitions. In the layered perovskite Ca(1.9)Sr(0.1)RuO4, such a first-order Mott MIT occurs in the bulk at a temperature of 154 kelvin on cooling. In contrast, at the surface, an unusual inherent Mott MIT is observed at 130 kelvin, also on cooling but without a simultaneous lattice distortion. The broken translational symmetry at the surface causes a compressional stress that results in a 150% increase in the buckling of the Ca/Sr-O surface plane as compared to the bulk. The Ca/Sr ions are pulled toward the bulk, which stabilizes a phase more amenable to a Mott insulator ground state than does the bulk structure and also energetically prohibits the structural transition that accompanies the bulk MIT.

摘要

莫特转变是由电子-电子相互作用驱动的金属-绝缘体转变(MITs),在体相中通常伴随着结构相变。在层状钙钛矿Ca(1.9)Sr(0.1)RuO4中,这种一级莫特MIT在冷却时于154开尔文的体相中发生。相比之下,在表面,在130开尔文时也观察到了一种不寻常的固有莫特MIT,同样是在冷却时,但没有同时发生晶格畸变。表面平移对称性的破坏会产生压缩应力,导致Ca/Sr - O表面平面的屈曲比体相增加150%。Ca/Sr离子被拉向体相,这使得一个比体相结构更适合莫特绝缘体基态的相得以稳定,并且在能量上也阻止了伴随体相MIT的结构转变。

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