Self-Formed Quantum Wires and Dots in GaAsP-GaAsP Core-Shell Nanowires.

GaAsP nanowires Nanowire quantum wires nanowire quantum dots

Journal

Nano letters
ISSN: 1530-6992
Titre abrégé: Nano Lett
Pays: United States
ID NLM: 101088070

Informations de publication

Date de publication:
12 06 2019
Historique:
pubmed: 30 5 2019
medline: 30 5 2019
entrez: 30 5 2019
Statut: ppublish

Résumé

Quantum structures designed using nanowires as a basis are excellent candidates to achieve novel design architectures. Here, triplets of quantum wires (QWRs) that form at the core-shell interface of GaAsP-GaAsP nanowires are reported. Their formation, on only three of the six vertices of the hexagonal nanowire, is governed by the three-fold symmetry of the cubic crystal on the (111) plane. In twinned nanowires, the QWRs are segmented, to alternating vertices, forming quantum dots (QDs). Simulations confirm the possibility of QWR and QD-like behavior from the respective regions. Optical measurements confirm the presence of two different types of quantum emitters in the twinned individual nanowires. The possibility to control the relative formation of QWRs or QDs, and resulting emission wavelengths of the QDs, by controlling the twinning of the nanowire core, opens up new possibilities for designing nanowire devices.

Identifiants

pubmed: 31141668
doi: 10.1021/acs.nanolett.9b01673
pmc: PMC7007271
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Pagination

4158-4165

Références

ACS Nano. 2015 Aug 25;9(8):8335-43
pubmed: 26225539
Nano Lett. 2007 Sep;7(9):2584-9
pubmed: 17696557
Adv Mater. 2014 May;26(17):2710-7, 2616
pubmed: 24677451
Nano Lett. 2015 May 13;15(5):3128-33
pubmed: 25822399
Nanoscale. 2017 Nov 9;9(43):16960-16967
pubmed: 29077119
Nano Lett. 2015 Nov 11;15(11):7544-51
pubmed: 26455732
Nat Nanotechnol. 2009 Jan;4(1):50-5
pubmed: 19119283
Nano Lett. 2018 May 9;18(5):3047-3052
pubmed: 29616557
Nano Lett. 2006 Dec;6(12):2743-7
pubmed: 17163698
Nano Lett. 2013 Feb 13;13(2):643-50
pubmed: 23323808
Nano Lett. 2014 Aug 13;14(8):4454-60
pubmed: 25010118
Nano Lett. 2016 Mar 9;16(3):1863-8
pubmed: 26885770
Nat Mater. 2013 May;12(5):439-44
pubmed: 23377293
Nano Lett. 2013 Aug 14;13(8):3742-8
pubmed: 23802750
ACS Nano. 2019 May 28;13(5):5931-5938
pubmed: 31067033
Nano Lett. 2007 Oct;7(10):3051-5
pubmed: 17887714
Nano Lett. 2018 Oct 10;18(10):6434-6440
pubmed: 30185050
Nanoscale. 2018 Mar 28;10(12):5591-5598
pubmed: 29528065
Nanoscale. 2012 Dec 7;4(23):7517-24
pubmed: 23100169
Nano Lett. 2016 Apr 13;16(4):2774-80
pubmed: 27004550

Auteurs

H Aruni Fonseka (HA)

Department of Physics , University of Warwick , Coventry CV4 7AL , United Kingdom.

Anton V Velichko (AV)

Department of Physics and Astronomy , University of Sheffield , Sheffield S3 7RH , United Kingdom.

Yunyan Zhang (Y)

Department of Electronic and Electrical Engineering , University College London , London WC1E 7JE , United Kingdom.

James A Gott (JA)

Department of Physics , University of Warwick , Coventry CV4 7AL , United Kingdom.

George D Davis (GD)

Department of Physics and Astronomy , University of Sheffield , Sheffield S3 7RH , United Kingdom.

Richard Beanland (R)

Department of Physics , University of Warwick , Coventry CV4 7AL , United Kingdom.

Huiyun Liu (H)

Department of Electronic and Electrical Engineering , University College London , London WC1E 7JE , United Kingdom.

David J Mowbray (DJ)

Department of Physics and Astronomy , University of Sheffield , Sheffield S3 7RH , United Kingdom.

Ana M Sanchez (AM)

Department of Physics , University of Warwick , Coventry CV4 7AL , United Kingdom.

Classifications MeSH