activity
20172026
most citedCoherent Acoustic Control of a Single Silicon Vacancy Spin in Diamond

157 citations · 411 across the 15 of their papers we have counts for

collaborators
Showing 2025Show all

6 papers · 1 filter

quant-ph2025

All-mechanical coherence protection and fast control of a spin qubit

Eliza Cornell, Zhujing Xu, Zhaoyou Wang +9

In a phononic quantum network, quantum information is stored and processed within stationary nodes defined by solid-state spins, and the information is routed between nodes by phon…

quant-ph2025

Thin Film Lithium Niobate on Diamond (LiNDa) platform for Efficient Spin-Phonon Coupling

Zhujing Xu, Sophie Weiyi Ding, Eliza Cornell +7

Negatively charged silicon vacancy (SiV) center in diamonds are leading candidates for solid-state quantum memories that can be controlled using electromagnetic or acoustic waves.…

quant-ph20252 cited

Minute-long quantum coherence enabled by electrical depletion of magnetic noise

Cyrus Zeledon, Benjamin Pingault, Jonathan C. Marcks +13

Integrating solid-state spin defects into classical electronic devices can enable new opportunities for quantum information processing that benefit from existing semiconductor tech…

quant-ph20256 cited

Purcell-enhanced spin-phonon coupling with a single color center

Graham Joe, Michael Haas, Kazuhiro Kuruma +9

The radiative properties of atoms are inherently linked to their surrounding environment. Placing an electromagnetic resonator around atoms can enhance spontaneous emission, as sho…

quant-ph20259 cited

Nuclear Spin Engineering for Quantum Information Science

Jonathan C. Marcks, Benjamin Pingault, Jiefei Zhang +3

Semiconductors are the backbone of modern technology, garnering decades of investment in high quality materials and devices. Electron spin systems in semiconductors, including atom…

cond-mat.mtrl-sci202513 cited

First-Principles Framework for the Prediction of Intersystem Crossing Rates in Spin Defects: The Role of Electron Correlation

Yu Jin, Jinsoo Park, Marquis M. McMillan +9

Optically active spin defects in solids are promising platforms for quantum technologies. Here, we present a first-principles framework to investigate intersystem crossing processe…