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Ultrafast symmetry control in photoexcited quantum dots

Authors :
Guzelturk, Burak
Portner, Joshua
Ondry, Justin
Ghanbarzadeh, Samira
Tarantola, Mia
Jeong, Ahhyun
Field, Thomas
Chandler, Alicia M.
Wieman, Eliza
Hopper, Thomas R.
Watkins, Nicolas E.
Yue, Jin
Cheng, Xinxin
Lin, Ming-Fu
Luo, Duan
Kramer, Patrick L.
Shen, Xiaozhe
Reid, Alexander H.
Borkiewicz, Olaf
Ruett, Uta
Zhang, Xiaoyi
Lindenberg, Aaron M.
Ma, Jihong
Schaller, Richard
Talapin, Dmitri V.
Cotts, Benjamin L.
Publication Year :
2024

Abstract

Symmetry control is essential for realizing unconventional properties, such as ferroelectricity, nonlinear optical responses, and complex topological order, thus it holds promise for the design of emerging quantum and photonic systems. Nevertheless, fast and reversible control of symmetry in materials remains a challenge, especially for nanoscale systems. Here, we unveil reversible symmetry changes in colloidal lead chalcogenide quantum dots on picosecond timescales. Using a combination of ultrafast electron diffraction and total X-ray scattering, in conjunction with atomic-scale structural modeling and first-principles calculations, we reveal that symmetry-broken lead sulfide quantum dots restore to a centrosymmetric phase upon photoexcitation. The symmetry restoration is driven by photoexcited electronic carriers, which suppress lead off-centering for about 100 ps. Furthermore, the change in symmetry is closely correlated with the electronic properties as shown by transient optical measurements. Overall, this study elucidates reversible symmetry changes in colloidal quantum dots, and more broadly defines a new methodology to optically control symmetry in nanoscale systems on ultrafast timescales.<br />Comment: 19 pages, 5 figures

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2408.15464
Document Type :
Working Paper