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Paris Agreement Compatible Sectoral Benchmarks 科技报告
来源:Climate Analytics. 出版年: 2020
作者:  New Climate Institute: Louise Jeffery;  Anna Nilsson;  Niklas Höhne;  Markus Hagemann;  Climate Analytics: Marie-Camille Attard;  Ursula Fuentes Hutfilter;  Andreas Geiges;  Matthew Gidden;  Bill Hare;  Michiel Schaeffer;  Ryan Wilson. Graphic design: Matt Beer
收藏  |  浏览/下载:9/0  |  提交时间:2020/12/07
Spin-cooling of the motion of a trapped diamond 期刊论文
NATURE, 2020
作者:  Auer, Thomas O.;  Khallaf, Mohammed A.;  Silbering, Ana F.;  Zappia, Giovanna;  Ellis, Kaitlyn;  Alvarez-Ocana, Raquel;  Arguello, J. Roman;  Hansson, Bill S.;  Jefferis, Gregory S. X. E.;  Caron, Sophie J. C.;  Knaden, Markus;  Benton, Richard
收藏  |  浏览/下载:15/0  |  提交时间:2020/07/03

Coupling the spins of many nitrogen-vacancy centres in a trapped diamond to its orientation produces a spin-dependent torque and spin-cooling of the motion of the diamond.


Observing and controlling macroscopic quantum systems has long been a driving force in quantum physics research. In particular, strong coupling between individual quantum systems and mechanical oscillators is being actively studied(1-3). Whereas both read-out of mechanical motion using coherent control of spin systems(4-9) and single-spin read-out using pristine oscillators have been demonstrated(10,11), temperature control of the motion of a macroscopic object using long-lived electronic spins has not been reported. Here we observe a spin-dependent torque and spin-cooling of the motion of a trapped microdiamond. Using a combination of microwave and laser excitation enables the spins of nitrogen-vacancy centres to act on the diamond orientation and to cool the diamond libration via a dynamical back-action. Furthermore, by driving the system in the nonlinear regime, we demonstrate bistability and self-sustained coherent oscillations stimulated by spin-mechanical coupling, which offers the prospect of spin-driven generation of non-classical states of motion. Such a levitating diamond-held in position by electric field gradients under vacuum-can operate as a '  compass'  with controlled dissipation and has potential use in high-precision torque sensing(12-14), emulation of the spin-boson problem(15) and probing of quantum phase transitions(16). In the single-spin limit(17) and using ultrapure nanoscale diamonds, it could allow quantum non-demolition read-out of the spin of nitrogen-vacancy centres at ambient conditions, deterministic entanglement between distant individual spins(18) and matter-wave interferometry(16,19,20).


  
Depth- and Time-Resolved Distributions of Snowmelt-Driven Hillslope Subsurface Flow and Transport and Their Contributions to Surface Waters 期刊论文
WATER RESOURCES RESEARCH, 2019
作者:  Tokunaga, Tetsu K.;  Wan, Jiamin;  Williams, Kenneth H.;  Brown, Wendy;  Henderson, Amanda;  Kim, Yongman;  Tran, Anh Phuong;  Conrad, Mark E.;  Bill, Markus;  Carroll, Rosemary W. H.;  Dong, Wenming;  Xu, Zexuan;  Lavy, Adi;  Gilbert, Ben;  Romero, Sergio;  Christensen, John N.;  Faybishenko, Boris;  Arora, Bhavna;  Siirila-Woodburn, Erica R.;  Versteeg, Roelof;  Raberg, Jonathan H.;  Peterson, John E.;  Hubbard, Susan S.
收藏  |  浏览/下载:10/0  |  提交时间:2020/02/16
recharge  hillslope  transmissivity  concentration-discharge  groundwater  snowmelt