Roch Nicolas, Florens Serge, Bouchiat Vincent, Wernsdorfer Wolfgang, Balestro Franck
Institut Néel, CNRS and Université Joseph Fourier, BP 166, 38042 Grenoble cedex 9, France.
Nature. 2008 May 29;453(7195):633-7. doi: 10.1038/nature06930.
Quantum criticality is the intriguing possibility offered by the laws of quantum mechanics when the wave function of a many-particle physical system is forced to evolve continuously between two distinct, competing ground states. This phenomenon, often related to a zero-temperature magnetic phase transition, is believed to govern many of the fascinating properties of strongly correlated systems such as heavy-fermion compounds or high-temperature superconductors. In contrast to bulk materials with very complex electronic structures, artificial nanoscale devices could offer a new and simpler means of understanding quantum phase transitions. Here we demonstrate this possibility in a single-molecule quantum dot, where a gate voltage induces a crossing of two different types of electron spin state (singlet and triplet) at zero magnetic field. The quantum dot is operated in the Kondo regime, where the electron spin on the quantum dot is partially screened by metallic electrodes. This strong electronic coupling between the quantum dot and the metallic contacts provides the strong electron correlations necessary to observe quantum critical behaviour. The quantum magnetic phase transition between two different Kondo regimes is achieved by tuning gate voltages and is fundamentally different from previously observed Kondo transitions in semiconductor and nanotube quantum dots. Our work may offer new directions in terms of control and tunability for molecular spintronics.
量子临界性是量子力学定律所带来的一种引人入胜的可能性,当一个多粒子物理系统的波函数被迫在两个不同的、相互竞争的基态之间连续演化时就会出现这种情况。这种现象通常与零温度磁相变有关,据信它支配着强关联系统的许多迷人特性,如重费米子化合物或高温超导体。与具有非常复杂电子结构的块状材料不同,人工纳米级器件可能提供一种全新且更简单的方式来理解量子相变。在此,我们在单分子量子点中展示了这种可能性,其中栅极电压在零磁场下诱导两种不同类型的电子自旋态(单重态和三重态)发生交叉。该量子点在近藤 regime 下运行,其中量子点上的电子自旋被金属电极部分屏蔽。量子点与金属接触之间的这种强电子耦合提供了观察量子临界行为所需的强电子关联。通过调节栅极电压实现了两种不同近藤 regime 之间的量子磁相变,这与之前在半导体和纳米管量子点中观察到的近藤转变有着根本的不同。我们的工作可能在分子自旋电子学的控制和可调性方面提供新的方向。