Department of Chemistry, University of Utah , Salt Lake City, Utah 84112, United States.
ACS Nano. 2014 Mar 25;8(3):2387-98. doi: 10.1021/nn405920k. Epub 2014 Jan 14.
We report measurements of fluorescence intermittency (blinking) and spectral behavior for single semiconductor nanocrystal quantum dots (QDs) isolated in the gas phase and discuss the effects on fluorescence of the QD charge state and heating to the point of sublimation. Core-shell CdSe/ZnS QDs were trapped in a quadrupole ion trap and detected by laser-induced fluorescence. The mass (M) and charge (Q) were determined nondestructively, and both were followed continuously over the course of hours or days. Emission spectra of the trapped QDs are significantly red-shifted relative to the solution-phase emission from the same particles. The temperature of the trapped QDs is determined by the balance between laser heating and collisional cooling and thermal emission, and it is possible to heat the particles to remove ligands or to the point of sublimation. QDs are observed to be emissive during sublimation, for up to 85% mass loss, with emission intensity roughly proportional to the surface area. Eventually, the fluorescence quantum yield drops suddenly, and the QDs begin to blink. The method used is versatile and will allow studies of quantum dot optical properties as a function of size, ligand removal, heating, surface oxidation, and other manipulations, where these properties are continuously correlated with the mass and charge.
我们报告了在气相中分离的单个半导体纳米晶体量子点(QD)的荧光间歇性(闪烁)和光谱行为的测量结果,并讨论了 QD 电荷状态和加热至升华点对荧光的影响。核壳 CdSe/ZnS QD 被捕获在四极离子阱中,并通过激光诱导荧光进行检测。质量(M)和电荷(Q)可以无损地确定,并且在数小时或数天的过程中连续跟踪。被捕获的 QD 的发射光谱相对于相同颗粒的溶液相发射明显红移。被捕获的 QD 的温度由激光加热和碰撞冷却以及热发射之间的平衡决定,并且可以将粒子加热以除去配体或加热至升华点。在升华过程中观察到 QD 是发射性的,直到质量损失高达 85%,发射强度大致与表面积成正比。最终,荧光量子产率突然下降,QD 开始闪烁。所使用的方法用途广泛,将允许研究量子点的光学性质作为尺寸、配体去除、加热、表面氧化和其他操作的函数,其中这些性质与质量和电荷连续相关。