Literature DB >> 30576110

Engineering Efficient Photon Upconversion in Semiconductor Heterostructures.

Christopher C Milleville, Eric Y Chen, Kyle R Lennon, Jill M Cleveland, Abinash Kumar1, Jing Zhang, James A Bork, Ansel Tessier2, James M LeBeau1, D Bruce Chase, Joshua M O Zide, Matthew F Doty.   

Abstract

Photon upconversion is a photophysical process in which two low-energy photons are converted into one high-energy photon. Photon upconversion has broad appeal for a range of applications from biomedical imaging and targeted drug release to solar energy harvesting. Current upconversion nanosystems, including lanthanide-doped nanocrystals and triplet-triplet annihilation molecules, have achieved upconversion quantum yields on the order of 10-30%. However, the performance of these materials is hampered by inherently narrow absorption cross sections and fixed energy levels originating in atomic, ionic, or molecular states. Semiconductors, on the other hand, have inherently wide absorption cross sections. Moreover, recent advances enable the synthesis of colloidal semiconductor nanoparticles with complex heterostructures that can control band alignments and tune optical properties. We synthesize and characterize a three-component heterostructure that successfully upconverts photons under continuous-wave illumination and solar-relevant photon fluxes. The heterostructure is composed of two cadmium selenide quantum dots (QDs), an absorber and emitter, spatially separated by a cadmium sulfide nanorod (NR). We demonstrate that the principles of semiconductor heterostructure engineering can be applied to engineer improved upconversion efficiency. We first eliminate electron trap states near the surface of the absorbing QD and then tailor the band gap of the NR such that charge carriers are funneled to the emitting QD. When combined, these two changes result in a 100-fold improvement in photon upconversion performance.

Entities:  

Keywords:  core/rod/emitter; coupled quantum dots; nanostructures; semiconductors; solar energy; upconversion

Year:  2018        PMID: 30576110     DOI: 10.1021/acsnano.8b07062

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  4 in total

1.  PbS Quantum Dots Decorating TiO2 Nanocrystals: Synthesis, Topology, and Optical Properties of the Colloidal Hybrid Architecture.

Authors:  Carlo Nazareno Dibenedetto; Teresa Sibillano; Rosaria Brescia; Mirko Prato; Leonardo Triggiani; Cinzia Giannini; Annamaria Panniello; Michela Corricelli; Roberto Comparelli; Chiara Ingrosso; Nicoletta Depalo; Angela Agostiano; Maria Lucia Curri; Marinella Striccoli; Elisabetta Fanizza
Journal:  Molecules       Date:  2020-06-26       Impact factor: 4.411

2.  Ratiometric upconversion nanothermometry with dual emission at the same wavelength decoded via a time-resolved technique.

Authors:  Xiaochen Qiu; Qianwen Zhou; Xingjun Zhu; Zugen Wu; Wei Feng; Fuyou Li
Journal:  Nat Commun       Date:  2020-01-07       Impact factor: 14.919

3.  NIR-to-visible upconversion in quantum dots via a ligand induced charge transfer state.

Authors:  Noga Meir; Iddo Pinkas; Dan Oron
Journal:  RSC Adv       Date:  2019-04-17       Impact factor: 4.036

4.  Designing Semiconductor Nanowires for Efficient Photon Upconversion via Heterostructure Engineering.

Authors:  Mattias Jansson; Fumitaro Ishikawa; Weimin M Chen; Irina A Buyanova
Journal:  ACS Nano       Date:  2022-07-25       Impact factor: 18.027

  4 in total

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