Jones Haley W, Bandera Yuriy, Foulger Stephen H
Center for Optical Materials Science and Engineering Technologies (COMSET), Clemson University, Anderson, South Carolina 29625, United States.
Department of Materials Science and Engineering, Clemson University, Clemson, South Carolina 29634, United States.
ACS Omega. 2024 Nov 25;9(49):48524-48535. doi: 10.1021/acsomega.4c07335. eCollection 2024 Dec 10.
The connection between a structured environment and the decay kinetics of an embedded emitter is explored by copolymerizing a naphthalimide derivative within polystyrene-based nanoparticles. The nanoparticles spontaneously self-assemble into a crystalline colloidal array, resulting in a partial photonic bandgap, or rejection wavelength, in the visible regime. The rejection wavelength of the liquid ordered array can be shifted across the emission spectrum of the nanoparticles by dilution with deionized water, which increases the interparticle spacing of the array. Time-resolved fluorescence of the ordered array at various rejection wavelength conditions is monitored at high- and low-energy electronic transition frequencies across the emission spectrum of the naphthalimide-copolymerized nanoparticles. Careful attention is given to the reference systems that are used to quantify photonic effects, the wavelengths at which decay kinetics are monitored, and the quantum yield of the naphthalimide-derived emitter. Increased and decreased excited-state lifetimes are observed, depending on the position of the rejection wavelength in relation to the emission of the emitter and the monitored wavelength, revealing critical insights in the context of quantum light-matter interactions and opportunities for strategic control over emitter decay pathways.
通过在基于聚苯乙烯的纳米颗粒中共聚萘二甲酰亚胺衍生物,探索了结构化环境与嵌入发光体衰变动力学之间的联系。纳米颗粒自发地自组装成晶体胶体阵列,在可见光区域产生部分光子带隙或截止波长。通过用去离子水稀释,可以使液体有序阵列的截止波长在纳米颗粒的发射光谱范围内移动,这会增加阵列中粒子间的间距。在萘二甲酰亚胺共聚物纳米颗粒发射光谱的高能和低能电子跃迁频率下,监测有序阵列在各种截止波长条件下的时间分辨荧光。仔细关注用于量化光子效应的参考系统、监测衰变动力学的波长以及萘二甲酰亚胺衍生发光体的量子产率。根据截止波长相对于发光体发射和监测波长的位置,观察到激发态寿命的增加和减少,这揭示了量子光与物质相互作用背景下的关键见解以及对发光体衰变途径进行策略控制的机会。