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Dedi Sutarma

Publications and source records attributed to Dedi Sutarma.

2 recordsLinked to original sources

Facet-Dependent Electronic Properties and Interfacial Point Defect Interactions in WS$_2$/ZnO Heterostructures

Aiming at two-dimensional materials for high-efficiency optoelectronics, WS$2$/ZnO heterostructures are computationally screened for their facet-dependent electronic properties and interfacial defect thermodynamics using first-principles hybrid functional calculations. Interface comparison identifies the non-polar ($10\overline{1}0$) $m$-plane as the optimal substrate facet, maintaining a direct 2.42~eV bandgap and a robust type-I band alignment. Isolated sulfur ($\mathrm{V_S}$) and interfacial oxygen ($\mathrm{V_O}$) vacancies introduce deep non-radiative recombination centers. Conversely, zinc vacancies ($\mathrm{V{Zn}}$) act as shallow acceptors near the valence band edge, contributing to unintentional $p$-type behavior. Analysis of defect pairs reveals that neutral vacancies cluster across the van der Waals gap due to favorable binding energies. Under $n$-type conditions, defects stabilize as charged species. Although inter-layer Coulomb repulsion weakens the binding energy of $(\mathrm{V_S} - \mathrm{V_{Zn}})''''$ pairs, their formation energy drops to 2.61~eV under anion-poor conditions, making the $-4$ cluster the most thermodynamically abundant defect pair at the interface. Furthermore, native $\mathrm{V_{Zn}}$ prevents the Fermi level rise typically induced by interstitial hydrogen ($\mathrm{H_i}$), distributing donated electrons into shallow acceptor states and preserving host band edge rigidity. These findings establish a microscopic framework for substrate selection and defect engineering in 2D/3D hybrid light-emitting diodes.

cond-mat.mtrl-sci

Mechanism of Oleic Acid-Mediated Sulfur Vacancy Healing in monolayer WS$_2$

We uncover the mechanism behind the enhancement of photoluminescence yield in monolayer WS$_2$ through oleic acid treatment, a promising scalable strategy for defect healing. By inducing sulfur vacancies through thermal treatment and monitoring the changes in photoluminescence yield and emission spectra, we demonstrate that oleic acid heals the sulfur vacancy by providing substitutional oxygen. Using density functional theory calculations, we provide insight into the underlying mechanism governing the oleic acid-mediated sulfur vacancy healing process. Our findings suggest that effective defect passivation by oxygen doping can be achieved through chemical treatment, opening a pathway for oxygen doping in transition metal dichalcogenides. However, we also highlight the limitations of chemical treatment, which may only lead to small increases in photoluminescence yield beyond a certain point.

cond-mat.mtrl-sci