Photophysics of InAs@InP@ZnSe core@shell@shell Quantum Dots Synthesized Using Amino-Arsine and Amino-Phosphine Based Precursors
Zheming Liu a, Jordi Liusar b, Hiba Haneena Karakkal c, Dongxu Zhu a, Yurii P Ivanov d, Mirko Prato e, Giorgio Divitini d, Sergio Brovelli c, Ivan Infante b f, Luca De Trizio g, Liberato Manna Manna a
a Nanochemistry, Istituto Italiano di TecnologiaVia Morego 30, Genova 16163, Italy
b BCMaterials, Basque Center for Materials, Applications, and Nanostruc-turesUPV/EHU Science Park
c Dipartimento di Scienza dei MaterialiUniversità degli Studi di Milano-BicoccaVia R. Cozzi 55, Milano 20125, Italy
d Electron Spectroscopy and NanoscopyIstituto Italiano di TecnologiaVia Morego 30, Genova 16163, Italy
e Materials CharacterizationIstituto Italiano di TecnologiaVia Morego 30, Genova 16163, Italy
f Ikerbasque Basque Foundation for ScienceBilbao 48009, Spain
g Chemistry FacilityIstituto Italiano di TecnologiaVia Morego 30, Genova 16163, Italy
Materials for Sustainable Development Conference (MATSUS)
Proceedings of MATSUS Spring 2025 Conference (MATSUSSpring25)
III-V Quantum Dots and Beyond: Pioneering Core-only and Core-Shell Structures for Future Applications - #III-VQD
Sevilla, Spain, 2025 March 3rd - 7th
Organizers: Ivan Infante and Liberato Manna
Poster, Hiba Haneena Karakkal, 587
Publication date: 16th December 2024

Photophysics of InAs@InP@ZnSe core@shell@shell Quantum Dots Synthesized Using Amino-Arsine and Amino-Phosphine Based Precursors

Zheming Liu, Jordi Llusar, Hiba H. Karakkal, Dongxu Zhu, Yurii P. Ivanov, Mirko Prato,Giorgio Divitini, Sergio Brovelli,* Ivan Infante,* Luca De Trizio,* and Liberato Manna*

Colloidal quantum dots (QDs) that absorb and emit in the infrared (IR) region are gaining significant attention as potential building blocks for optoelectronic devices1,2. Among IR materials, InAs QDs are particularly promising, as their bandgap can be tuned from the visible to the near-IR range through quantum confinement3. However, improving the photoluminescence quantum yield (PLQY) remains challenging. Encapsulation of InAs QDs in suitable wide bandgap shell materials, such as ZnSe, can improve PL efficiency, but lattice mismatch leads to strained interfaces, limiting their PLQY4. In this work, we introduce InAs@InP@ZnSe multi-shell QDs as an effective solution wherein the InP interlayer improves structural stability by matching the lattice constants between InAs and ZnSe, reducing strain and defects, and enabling a smoother energy barrier. Synthesis of these multi-shell quantum dots has been achieved for the first time by employing cost-effective and environmentally friendly precursors as an alternative to the traditional pyrophoric reagents, offering a safer and more sustainable approach.

A detailed spectroscopic study has been carried out inorder to understand the mechanism of improved optical properties in the core@shell and core@sheel@shell quantum dots. Initial InAs QDs exhibited a low PLQY (~2%) and a long photoluminescence (PL) lifetime at 80 K, attributed to exciton decay involving indirect excitons through resonant surface traps. However, due to poor surface passivation, they exhibited a fast, multiexponential PL decay profile at room temperature. Overgrowth of an InP shell resulted in InAs@InP QDs with a red-shifted absorption and PL spectra and improved optical properties: a higher PLQY (~13%), and a faster PL decay indicating a transition to free exciton recombination. The subsequent addition of a ZnSe shell led to the formation of InAs@InP@ZnSe QDs with atomically sharp interfaces and low lattice strain (<1%). These multi-shell QDs demonstrated further suppressed non-radiative recombination, achieving a PLQY as high as 55%. The PL lifetime remained similar to that of InAs@InP QDs, suggesting that the reduced PLQY in InAs@InP QDs, as well as the residual losses in the multi-shell QDs, are likely due to ultrafast surface trapping that depletes the band edges without affecting the PL kinetics. To investigate the multi-exciton dynamics, fluence-dependent transient absorption spectroscopic (TA) measurements were carried out by varying the pump fluence according to the desired value of the average number of excitons per QDs. In all the systems, the biexciton quantum yield was found to be below 0.1%, demonstrating that neither InP nor ZnSe shells effectively suppress Auger recombination losses. These experimental observations were further supported by our density functional theory calculations. Overall this work demonstrates that InAs-based multi-shell quantum dots synthesized with amino-based precursors achieve enhanced optical performance, providing an effective strategy for overcoming the challenges of non-radiative recombination in IR-emitting quantum dot systems.

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