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Tong Wu

Researcher at Nanjing University of Science and Technology

Publications -  14
Citations -  311

Tong Wu is an academic researcher from Nanjing University of Science and Technology. The author has contributed to research in topics: High harmonic generation & Laser. The author has an hindex of 7, co-authored 9 publications receiving 229 citations.

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Dependence of high-order-harmonic generation on dipole moment in Si O 2 crystals

TL;DR: In this paper, the shape of dipole moments played an important role in high-order harmonic generation under a strong laser field by solving the extended semiconductor Bloch equations, and the results showed that harmonic conversion efficiency was significantly enhanced and cutoff energy was distinctly increased when the dipole moment change greatly along a valley in the $k$ direction in the solid.
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Two-dimensional imaging of energy bands from crystal orientation dependent higher-order harmonic spectra in h − BN

TL;DR: In this article, a double-plateau structure of high-order harmonic generation from hexagonal boron nitride is simulated by solving extended multiband semiconductor Bloch equations under strong laser fields.
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Interference effects on harmonic generation from H 2 + in nonhomogeneous laser field.

TL;DR: By solving the time-dependent Schrödinger equation both in simplified one-dimensional coordinate and three-dimensional cylindrical coordinate systems, the high-order harmonic generation from H2 + in spatially symmetric and asymmetric nonhomogeneous laser fields was studied, demonstrating that interference effects are greatly influenced by laser parameters.
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Strain effect on the orientation-dependent harmonic spectrum of monolayer aluminum nitride

TL;DR: In this paper, the authors theoretically investigate the strain effect on the orientation-dependent high-order harmonic generation (HHG) of monolayer aluminum nitride (AlN) by solving the multiband semiconductor Bloch equations in strong laser fields.
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Dissociation and Ionization of Quasi-Periodically Vibrating H 2 + in Intense Few-Cycle Mid-Infrared Laser Fields

TL;DR: This work provides a useful method for steering the electronic and nuclear dynamics of diatomic molecules in intense laser fields by studying the dissociation and ionization dynamics of the hydrogen-molecule ion in strong laser fields.