Document Type

Article

Publication Title

Materials Today Nano

Abstract

Tellurium–selenide (TexSe1-x) binary alloys are promising chalcogenide systems with tunable optoelectronic properties, yet their synthesis in quantumly confined one-dimensional forms remains limited. Here, we report the synthesis of TexSe1-x quantum wires (QWs) via a two-step pulsed laser ablation in liquids (PLAL) approach, enabling surfactant-free formation of alloyed nanostructures under non-equilibrium conditions. A tellurium colloid is first generated and subsequently exposed to selenium ablation, promoting in-situ alloying through repeated plasma-bubble interactions at high repetition rate. The resulting QWs exhibit an average diameter of ~17 ± 4 nm and a length of ~475 ± 46 nm. Structural and chemical analyses (XRD, Raman, XPS, STEM-EDX) confirm a homogeneous trigonal Te0.25Se0.75 composition with no evidence of phase segregation. Photo- luminescence reveals a strong emission centered at ~2.8 ± 0.1 eV, significantly blue-shifted relative to the bulk bandgap. This optical response cannot be explained by quantum confinement alone and is instead attributed to the combined effects of spatial confinement and disorder induced defect states arising from alloying and non- equilibrium growth. Time-resolved measurements show nanosecond-scale decay (~1.9 ns), consistent with recombination mediated by defect-related states. Mechanistically, high-repetition-rate PLAL creates a quasi- continuous reactive environment that promotes interdiffusion, suppresses phase segregation, and drives aniso- tropic growth along the trigonal c-axis. These results demonstrate a versatile route for one-dimensional chal- cogenide nanoalloys and highlight the interplay between confinement and disorder in tailoring nanoscale optical properties.

Department

Donaghey College of Science, Technology, Engineering, and Mathematics

Publication Date

8-2026

Share

COinS