首页> 外文学位 >Study of spin dynamics by means of on-chip SQUIDs.
【24h】

Study of spin dynamics by means of on-chip SQUIDs.

机译:通过片上SQUID研究自旋动力学。

获取原文
获取原文并翻译 | 示例

摘要

We developed an on-chip SQUID (Superconducting Quantum Interference Device) measurement technique to study spin dynamics in Single Molecular Magnets (SMMs) and other spin systems. SMMs systems are thought as potential qubit candidates, due to their quantum nature and the possibility to construct superposition of molecular spin states. If spins are enough diluted to minimize dipolar interactions and therefore increase decoherence time, the information carried by each molecular qubit can be preserved for sufficiently long times and measured in a single crystal sample. The SQUID, as the most sensitive magnetometer, is used to investigate the magnetization of macroscopic samples containing the spins under study. Traditional SQUID equipment performs magnetization measurements by shielding the SQUID from external magnetic fields, since a high field would destroy its superconductivity. The SQUID-sample coupling in such arrangement is done by a pick-up coil, at the expense of sensitivity. In contrast, the setup implemented by us at NHMFL, uses an ultra thin (∼ 3 nm in thickness) niobium SQUID with nano-bridge junctions. Such a SQUID can preserve its superconductivity up to a very high field, as long as the field is perfectly aligned in the film's plane.;We conducted experiments at low temperature, in a 3He/ 4He dilution refrigerator. The measured SQUID switching current is periodically modulated by the magnetic flux, generated only by the studied sample if the field is perfectly aligned with the SQUID plane. Through an initial calibration process, the vectorial magnetic field is aligned with the SQUID plane, for fields up to the maximum field achievable in this setup (7 Tesla). A superconducting feedback coil, placed above the SQUID, is used to compensate the magnetic flux variation caused by the sample. The feedback coil (and its current) can therefore relay information about the sample's magnetization. The control of the experimental setup is accomplished through Labview programs and is ready to incorporate spin excitation done by microwave or laser pulses.;We have investigated the molecular paddle-wheel complex of Ru+52 . This molecule shows an enhanced magnetic hysteresis, with a valley of negative differential susceptibility, due to an abrupt spin reversal followed by a phonon avalanche. We simulated the process using the phonon bottleneck effect. Another theoretical model is developed to describe a blending of non-adiabatic spin rotation and the phonon bottleneck effect. Also, using our on-chip SQUID technique, we have observed a spin transition at 1.2 K in Gd3N C80, which is caused by the charge transfer between one of the Gd ions and the carbon cage. In another molecular magnet, Mn12-tBuAc, the influence of the transverse field on the tunneling probability is studied in detail and compared to numerical calculations which we performed using a diagonalization technique.
机译:我们开发了一种片上SQUID(超导量子干涉仪)测量技术,以研究单分子磁体(SMM)和其他自旋系统中的自旋动力学。由于SMMs的量子性质和构造分子自旋态叠加的可能性,它们被认为是潜在的量子位候选者。如果自旋被充分稀释以最小化偶极相互作用并因此增加去相干时间,则每个分子量子位所携带的信息可以保留足够长的时间,并可以在单晶样品中进行测量。作为最灵敏的磁力计,SQUID用于研究包含所研究自旋的宏观样品的磁化强度。传统的SQUID设备通过屏蔽SQUID使其免受外部磁场的影响来进行磁化测量,因为高磁场会破坏其超导性。在这种布置中,SQUID-样本耦合通过拾取线圈完成,但会降低灵敏度。相反,我们在NHMFL实施的设置使用具有纳米桥结的超薄(厚度约3 nm)铌SQUID。只要该场在膜平面内完美对齐,这种SQUID就能在超高场中保持其超导性。我们在3He / 4He稀释冰箱中进行了低温实验。如果磁场与SQUID平面完全对齐,则所测得的SQUID开关电流会定期由磁通量调制,该磁通量仅由研究样品产生。通过最初的校准过程,矢量磁场与SQUID平面对齐,直至磁场达到此设置中可达到的最大磁场(7 Tesla)。位于SQUID上方的超导反馈线圈用于补偿样品引起的磁通量变化。因此,反馈线圈(及其电流)可以传递有关样品磁化强度的信息。实验设置的控制是通过Labview程序完成的,并准备好结合微波或激光脉冲产生的自旋激发。;我们研究了Ru + 52的分子桨轮配合物。由于突然的自旋反转和声子雪崩,该分子显示出增强的磁滞,具有负的微分磁化率谷。我们使用声子瓶颈效应模拟了该过程。建立了另一个理论模型来描述非绝热自旋旋转和声子瓶颈效应的混合。另外,使用我们的片上SQUID技术,我们已经观察到Gd3N C80在1.2 K处的自旋跃迁,这是由Gd离子之一与碳笼之间的电荷转移引起的。在另一种分子磁体Mn12-tBuAc中,详细研究了横向场对隧穿概率的影响,并将其与我们使用对角化技术进行的数值计算进行了比较。

著录项

  • 作者

    Chen, Lei.;

  • 作者单位

    The Florida State University.;

  • 授予单位 The Florida State University.;
  • 学科 Physics Low Temperature.;Physics Condensed Matter.;Physics Electricity and Magnetism.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 148 p.
  • 总页数 148
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号