High-Throughput Characterization of Single-Quantum-Dot Emission Spectra and Spectral Diffusion by Multiparticle Spectroscopy

Publication date

2023-08-16

Authors

Mangnus, Mark J.J.ISNI 0000000492816217
de Wit, Jurriaan WillemISNI 0000000492796199
Vonk, Sander Jan WilhelmusISNI 0000000492798311
Geuchies, J.J.ISNI 0000000506008094
Albrecht, W.ISNI 0000000419574792
Bals, Sara
Houtepen, Arjan Jeroen
Rabouw, FreddyISNI 0000000492491619

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Advisors

Supervisors

Document Type

Article
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License

cc_by

Abstract

In recent years, quantum dots (QDs) have emerged as bright, color-tunable light sources for various applications such as light-emitting devices, lasing, and bioimaging. One important next step to advance their applicability is to reduce particle-to-particle variations of the emission properties as well as fluctuations of a single QD’s emission spectrum, also known as spectral diffusion (SD). Characterizing SD is typically inefficient as it requires time-consuming measurements at the single-particle level. Here, however, we demonstrate multiparticle spectroscopy (MPS) as a high-throughput method to acquire statistically relevant information about both fluctuations at the single-particle level and variations at the level of a synthesis batch. In MPS, we simultaneously measure emission spectra of many (20-100) QDs with a high time resolution. We obtain statistics on single-particle emission line broadening for a batch of traditional CdSe-based core-shell QDs and a batch of the less toxic InP-based core-shell QDs. The CdSe-based QDs show significantly narrower homogeneous line widths, less SD, and less inhomogeneous broadening than the InP-based QDs. The time scales of SD are longer in the InP-based QDs than in the CdSe-based QDs. Based on the distributions and correlations in single-particle properties, we discuss the possible origins of line-width broadening of the two types of QDs. Our experiments pave the way to large-scale, high-throughput characterization of single-QD emission properties and will ultimately contribute to facilitating rational design of future QD structures.

Keywords

CdSe, high-throughput single-particle spectroscopy, InP, multiparticle spectroscopy, quantum dots, spectral diffusion, Electronic, Optical and Magnetic Materials, Biotechnology, Atomic and Molecular Physics, and Optics, Electrical and Electronic Engineering

Citation

Mangnus, M J J, de Wit, J W, Vonk, S J W, Geuchies, J J, Albrecht, W, Bals, S, Houtepen, A J & Rabouw, F T 2023, 'High-Throughput Characterization of Single-Quantum-Dot Emission Spectra and Spectral Diffusion by Multiparticle Spectroscopy', ACS Photonics, vol. 10, no. 8, pp. 2688-2698. https://doi.org/10.1021/acsphotonics.3c00420