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卫健学术沙龙:人口层面的生命伦理学——对公众健康三十五年的贡献
Electrocatalysis for Energy Conversion and Storage
Pushing the boundary?of chemical syntheses of glycans and glycoconjugates
“清美”沙龙 :记忆冲撞
报告题目:
Density Wave Probes the Quantum Phase Transition in a Cuprate Superconductor
 报告人:
Prof. Jennifer E Hoffman
Harvard University
报告时间:
2018-08-24 15:00
报告地点:
理科楼郑裕彤讲堂
主办单位:
物理系低维量子物理国家重点实验室
  简介:
低维量子物理国家重点实验室杰出学者讲座
 
The strong electronic correlations of the doped antiferromagnetic Mott insulator give rise to unconventional phases beyond high temperature superconductivity in the cuprates.  Multiple broken symmetries have been reported, though a complete description of their emergence and interaction is missing. At the heart of this complex phase diagram is evidence of a quantum critical point, where disconnected Fermi arcs jump inexplicably to a large Fermi surface as holes are added. Here, we use sub-unit-cell scanning tunneling microscopy and spectroscopy (STM/S) to track the d-form factor density wave throughout the phase diagram as a local fingerprint of the dominant interactions in (Bi,Pb)2(Sr,La)2CuO6+d. Crucially, we use nanoscale electronic inhomogeneity as a tool to access a range of dopings within a single sample. We discover an abrupt change in the evolution of the modulation wavevector, signaling a commensurate to incommensurate transition that is coincident with the Fermi surface transition.  Furthermore, the rapid growth of the wavelength on the overdoped side of the transition is at odds with a simple Fermi surface instability, providing evidence for persistent effects of strong correlations.
 
Bio: Professor Jennifer E Hoffman received her B.S. degree from Harvard University in 1999, PhD from University of California, Berkeley in 2003. She then went to Stanford University for postdoctoral research.  After staying there for one year, she joined Harvard University as assistant scientist in 2004, and became the tenured professor in 2015. Professor Hoffman is interested in how electrons behave within exotic materials, and has contributed to the observations of checkerboard and quasiparticle interference in cuprates. She has been named a 2008 NSF Career Fellow, a 2010 Sloan Research Fellow, a 2013 Radcliffe Fellow, and a 2014 Moore Foundation Experimental Investigator. Her current interest is in the physics of high temperature superconductors, topological insulators, and strongly correlated systems.
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