GSTDTAP  > 地球科学
DOI10.1038/s41586-020-2057-7
Coherent electrical control of a single high-spin nucleus in silicon
Dedoussi, Irene C.1,2; Eastham, Sebastian D.1,3; Monier, Erwan3,4; Barrett, Steven R. H.1,3
2020-02-01
发表期刊NATURE
ISSN0028-0836
EISSN1476-4687
出版年2020
卷号579期号:7798页码:205-+
文章类型Article
语种英语
国家Australia; USA; Japan
英文关键词

Nuclear spins are highly coherent quantum objects. In large ensembles, their control and detection via magnetic resonance is widely exploited, for example, in chemistry, medicine, materials science and mining. Nuclear spins also featured in early proposals for solid-state quantum computers(1) and demonstrations of quantum search(2) and factoring(3) algorithms. Scaling up such concepts requires controlling individual nuclei, which can be detected when coupled to an electron(4-6). However, the need to address the nuclei via oscillating magnetic fields complicates their integration in multi-spin nanoscale devices, because the field cannot be localized or screened. Control via electric fields would resolve this problem, but previous methods(7-9) relied on transducing electric signals into magnetic fields via the electron-nuclear hyperfine interaction, which severely affects nuclear coherence. Here we demonstrate the coherent quantum control of a single Sb-123 (spin-7/2) nucleus using localized electric fields produced within a silicon nanoelectronic device. The method exploits an idea proposed in 1961(10) but not previously realized experimentally with a single nucleus. Our results are quantitatively supported by a microscopic theoretical model that reveals how the purely electrical modulation of the nuclear electric quadrupole interaction results in coherent nuclear spin transitions that are uniquely addressable owing to lattice strain. The spin dephasing time, 0.1 seconds, is orders of magnitude longer than those obtained by methods that require a coupled electron spin to achieve electrical driving. These results show that high-spin quadrupolar nuclei could be deployed as chaotic models, strain sensors and hybrid spin-mechanical quantum systems using all-electrical controls. Integrating electrically controllable nuclei with quantum dots(11,12) could pave the way to scalable, nuclear- and electron-spin-based quantum computers in silicon that operate without the need for oscillating magnetic fields.


领域地球科学 ; 气候变化 ; 资源环境
收录类别SCI-E
WOS记录号WOS:000519378900017
WOS关键词TOTAL-ENERGY CALCULATIONS ; QUANTUM ; QUBIT ; ALGORITHM ; READOUT
WOS类目Multidisciplinary Sciences
WOS研究方向Science & Technology - Other Topics
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/281086
专题地球科学
资源环境科学
气候变化
作者单位1.MIT, Dept Aeronaut & Astronaut, Lab Aviat & Environm, Cambridge, MA 02139 USA;
2.Delft Univ Technol, Sect Aircraft Noise & Climate Effects, Fac Aerosp Engn, Delft, Netherlands;
3.MIT, Joint Program Sci & Policy Global Change, 77 Massachusetts Ave, Cambridge, MA 02139 USA;
4.Univ Calif Davis, Dept Land Air & Water Resources, Davis, CA 95616 USA
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GB/T 7714
Dedoussi, Irene C.,Eastham, Sebastian D.,Monier, Erwan,et al. Coherent electrical control of a single high-spin nucleus in silicon[J]. NATURE,2020,579(7798):205-+.
APA Dedoussi, Irene C.,Eastham, Sebastian D.,Monier, Erwan,&Barrett, Steven R. H..(2020).Coherent electrical control of a single high-spin nucleus in silicon.NATURE,579(7798),205-+.
MLA Dedoussi, Irene C.,et al."Coherent electrical control of a single high-spin nucleus in silicon".NATURE 579.7798(2020):205-+.
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