Kim Ju Ho, Kwon Hyekyeong, Jeong Myoungho, Bang Jiwon
Department of chemistry, Incheon National University Yeonsu-gu, Incheon 22012, Republic of Korea.
Samsung Future Technology Campus, 130 Samsung-ro, Yeongtong-gu, Suwon, Korea Republic.
Nanoscale. 2024 Oct 3;16(38):17984-17991. doi: 10.1039/d4nr02524e.
This study explores the synthesis of colloidal zinc phosphide quantum dots (QDs) by a novel In(Zn)P cluster seed-mediated approach, addressing the challenge of achieving low-cost, high-quality, nontoxic QDs suitable for optoelectronic applications. By intentionally limiting the amount of In precursor added to a hot solvent containing Zn and P precursors, In-rich In(Zn)P cluster seeds were formed. Subsequently, these clusters served as seeds for the growth of zinc phosphide nanocrystals, effectively using the remaining Zn and P precursors for further crystal growth. The synthesized QDs exhibited a tetragonal-like ZnP structure and exceptional optical properties, including band-edge photoluminescence (PL) emission under ambient conditions. A ZnS shell was applied to further enhance the PL intensity, achieving a PL quantum yield of 40% and an average PL decay lifetime of 74 ns, while significantly improving the stability of the QDs. Temperature-dependent PL spectroscopy revealed significant resistance to thermal quenching with an exciton dissociation energy of 62 meV, underscoring the potential of this approach for advancing the field of optoelectronics. This method provides a pathway to fabricate zinc phosphide-based QDs with controlled optical properties and highlights the effective use of earth-abundant materials in the development of environmentally benign photonic materials.
本研究探索了一种通过新型铟(锌)磷簇种子介导的方法合成胶体磷化锌量子点(QDs),以应对实现适用于光电子应用的低成本、高质量、无毒量子点这一挑战。通过有意限制添加到含有锌和磷前驱体的热溶剂中的铟前驱体的量,形成了富铟的铟(锌)磷簇种子。随后,这些簇作为磷化锌纳米晶体生长的种子,有效地利用剩余的锌和磷前驱体进行进一步的晶体生长。合成的量子点呈现出类似四方的ZnP结构和优异的光学性质,包括在环境条件下的带边光致发光(PL)发射。应用硫化锌壳层进一步提高PL强度,实现了40%的PL量子产率和74 ns的平均PL衰减寿命,同时显著提高了量子点的稳定性。温度依赖的PL光谱显示出对热猝灭的显著抗性,激子解离能为62 meV,突出了这种方法在推进光电子领域的潜力。该方法为制备具有可控光学性质的磷化锌基量子点提供了一条途径,并强调了在开发环境友好型光子材料中有效利用储量丰富的材料。