Orthogonal Attosecond Control of Solid-State Harmonics by Optical Waveforms and Quantum Geometry Engineering
Zhenjiang Zhao, Zhihua Zheng, Zhiyi Xu, Xing Ran, Xiaolong Yao, Fangping Ouyang

TL;DR
This paper demonstrates a method to control and enhance high-harmonic generation in monolayer WS2 using combined optical waveforms and strain engineering, revealing quantum geometric effects and enabling attosecond-scale electron dynamics probing.
Contribution
It introduces a dual-mode control strategy combining two-color laser fields and strain to manipulate harmonic emission and uncover quantum geometric influences in solid-state HHG.
Findings
Strain amplifies perpendicular harmonic components by nearly twofold.
Relative phase control of two-color fields switches quantum coherence on sub-femtosecond timescales.
Berry curvature reshaping significantly boosts interband harmonic response.
Abstract
High-harmonic generation (HHG) in two-dimensional materials offers a compelling route toward compact extreme ultraviolet sources and probing electron dynamics on the attosecond scale. However, achieving precise control over the emission and disentangling the complex interplay between intraband and interband quantum pathways remains a central challenge. Here, we demonstrate through first-principles simulations that HHG in monolayer WS2 can be subjected to precise, complementary control by combining all-optical two-color laser fields with mechanical strain engineering. This dual-mode strategy provides distinct, orthogonal control over harmonic yield, polarization, and spectral features. We reveal that sculpting the two-color field's relative phase provides a sub-femtosecond switch for the quantum coherence of electron-hole pairs, thereby optimizing harmonic emission. Crucially, we uncover…
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Taxonomy
TopicsLaser-Matter Interactions and Applications · Laser Material Processing Techniques · Spectroscopy and Quantum Chemical Studies
