Department of Nuclear Science and Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Phys Rev Lett. 2010 Nov 12;105(20):200402. doi: 10.1103/PhysRevLett.105.200402.
We experimentally demonstrate over 2 orders of magnitude increase in the room-temperature coherence time of nitrogen-vacancy centers in diamond by implementing decoupling techniques. We show that equal pulse spacing decoupling performs just as well as nonperiodic Uhrig decoupling and also allows us to take advantage of revivals in the echo to explore the longest coherence times. At short times, we can extend the coherence of particular quantum states out from T2*=2.7 μs out to an effective T2>340 μs. For preserving arbitrary states we show the experimental importance of using pulse sequences that compensate the imperfections of individual pulses for all input states through judicious choice of the phase of the pulses. We use these compensated sequences to enhance the echo revivals and show a coherence time of over 1.6 ms in ultrapure natural abundance 13C diamond.
我们通过实施去耦技术,实验证明钻石中的氮空位中心在室温下的相干时间延长了两个数量级以上。我们表明,等脉冲间隔去耦的效果与非周期性 Uhrig 去耦一样好,并且还允许我们利用回波中的复兴来探索最长的相干时间。在短时间内,我们可以将特定量子态的相干性从 T2*=2.7 μs 延长到有效 T2>340 μs。为了保存任意态,我们通过明智地选择脉冲相位,展示了使用通过对所有输入态补偿单个脉冲的不完美来补偿脉冲序列的实验重要性。我们使用这些补偿序列来增强回波复兴,并在超纯天然丰度 13C 钻石中显示出超过 1.6 毫秒的相干时间。