Watanabe Shinji, Tsuruta Atsushi, Miyake Kazumasa, Flouquet Jacques
Department of Applied Physics, University of Tokyo, Tokyo, Japan.
Phys Rev Lett. 2008 Jun 13;100(23):236401. doi: 10.1103/PhysRevLett.100.236401. Epub 2008 Jun 10.
We study the mechanism of how critical end points of first-order valence transitions are controlled by a magnetic field. We show that the critical temperature is suppressed to be a quantum critical point (QCP) by a magnetic field, and unexpectedly, the QCP exhibits nonmonotonic field dependence in the ground-state phase diagram, giving rise to the emergence of metamagnetism even in the intermediate valence-crossover regime. The driving force of the field-induced QCP is clarified to be cooperative phenomena of the Zeeman and Kondo effects, which create a distinct energy scale from the Kondo temperature. This mechanism explains the peculiar magnetic response in CeIrIn(5) and the metamagnetic transition in YbXCu(4) for X=In as well as the sharp contrast between X=Ag and Cd.
我们研究了磁场如何控制一阶价态转变的关键端点的机制。我们表明,临界温度会被磁场抑制为量子临界点(QCP),并且出乎意料的是,该QCP在基态相图中表现出非单调的场依赖性,甚至在中间价态交叉区域也会引发超磁性的出现。场诱导QCP的驱动力被阐明是塞曼效应和近藤效应的协同现象,这产生了一个与近藤温度不同的能量尺度。这种机制解释了CeIrIn(5)中奇特的磁响应以及YbXCu(4)(X = In)中的超磁转变,以及X = Ag和Cd之间的鲜明对比。