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Shuk-Yin Tong

Publications and source records attributed to Shuk-Yin Tong.

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Optically driven thermodynamic transition from free- to locked-epitaxy

Controlling crystallographic orientation in quasi-van der Waals (vdW) epitaxy remains a fundamental challenge, especially for material systems located near the boundary between weakly and strongly coupled growth regimes. In such marginal systems, epitaxial selection is governed by a delicate thermodynamic competition between surface-energy penalties and interfacial interaction gains, giving rise to two archetypal limits: vdW-dominated free-epitaxy and strong interfacial coupling dominated locked-epitaxy. However, dynamically driving transitions between these regimes has remained elusive. Here, we demonstrate that external light irradiation can deterministically induce such a transition. Using the thermodynamically frustrated Fe4N/mica interface as a model system, we show that photo-excited carriers act as a chemical potentiator, significantly enhancing the interfacial chemical affinity. Within a quantitative thermodynamic description, this optical modulation increases the locking criterion (I_lock)-defined as the ratio of interfacial energy gain to surface-energy cost-beyond its critical threshold. As a result, the system switches from vdW-dominated free-epitaxy with (001) orientation to chemically locked-epitaxy with (111) orientation. Our findings establish light as a non-invasive and switchable control knob to dynamically reconfigure the interfacial energy landscape in quasi-vdW epitaxy, enabling programmable access to distinct epitaxial states beyond intrinsic material limitations.

cond-mat.mtrl-sci

Prediction of topotactic transition from black to blue phosphorus induced by surface Br adsorption

Based on first-principles calculations, we propose a potential access to the yet unrealized freestanding blue phosphorus (blueP) through transformation of black phosphorus (blackP) induced by surface bromine (Br) adsorption. Formation of the Br-P bonds disrupts the original sp3 configurations in blackP, generates unpaired pz electrons and induces a structural transformation that results in blueP formation by re-pairing the pz orbitals. Ab initio molecular dynamics simulations confirm that randomly adsorbed Br adatoms on bilayer blackP spontaneously diffuse into specific patterns to render the emergence of the blueP phase. The expected obtainment Br-passivated blueP nanoribbons exhibit tunable band gaps in a wide range and high carrier mobilities of the order of 1000 cm2V-1s-1. This study provides an opportunity to fabricate blueP through the conversion from blackP by tuning its surface chemistry.

cond-mat.mtrl-sci