Zachary P. L. Laker
University of Warwick
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Featured researches published by Zachary P. L. Laker.
Science Advances | 2017
Neil R. Wilson; Paul Nguyen; Kyle Seyler; Pasqual Rivera; Alexander J. Marsden; Zachary P. L. Laker; Gabriel C. Constantinescu; Viktor Kandyba; Alexei Barinov; Nicholas Hine; Xiaodong Xu; David Cobden
Photoemission measurements on exfoliated 2D heterostructures reveal detailed electronic structure and hybridization effects. Combining monolayers of different two-dimensional semiconductors into heterostructures creates new phenomena and device possibilities. Understanding and exploiting these phenomena hinge on knowing the electronic structure and the properties of interlayer excitations. We determine the key unknown parameters in MoSe2/WSe2 heterobilayers by using rational device design and submicrometer angle-resolved photoemission spectroscopy (μ-ARPES) in combination with photoluminescence. We find that the bands in the K-point valleys are weakly hybridized, with a valence band offset of 300 meV, implying type II band alignment. We deduce that the binding energy of interlayer excitons is more than 200 meV, an order of magnitude higher than that in analogous GaAs structures. Hybridization strongly modifies the bands at Γ, but the valence band edge remains at the K points. We also find that the spectrum of a rotationally aligned heterobilayer reflects a mixture of commensurate and incommensurate domains. These results directly answer many outstanding questions about the electronic nature of MoSe2/WSe2 heterobilayers and demonstrate a practical approach for high spectral resolution in ARPES of device-scale structures.
Angewandte Chemie | 2015
Concha Bosch-Navarro; Zachary P. L. Laker; Helen R. Thomas; Alexander J. Marsden; Jeremy Sloan; Neil R. Wilson; Jonathan P. Rourke
Atomic-resolution transmission electron microscopy was used to identify individual Au9 clusters on a sulfur-functionalized graphene surface. The clusters were preformed in solution and covalently attached to the surface without any dispersion or aggregation. Comparison of the experimental images with simulations allowed the rotational motion, without lateral displacement, of individual clusters to be discerned, thereby demonstrating a robust covalent attachment of intact clusters to the graphene surface.
Chemical Science | 2017
Maria Inam; Graeme Cambridge; Anaïs Pitto-Barry; Zachary P. L. Laker; Neil R. Wilson; Robert T. Mathers; Andrew P. Dove; Rachel K. O'Reilly
Physical Chemistry Chemical Physics | 2015
Concha Bosch-Navarro; Zachary P. L. Laker; Jonathan P. Rourke; Neil R. Wilson
Nanoscale | 2017
Zachary P. L. Laker; Alexander J. Marsden; Oreste De Luca; Ada Della Pia; Luis M. Alves Perdigão; Giovanni Costantini; Neil R. Wilson
FlatChem | 2017
Concha Bosch-Navarro; Zachary P. L. Laker; Alexander J. Marsden; Neil R. Wilson; Jonathan P. Rourke
Advanced Functional Materials | 2016
Alexander J. Marsden; Luke A. Rochford; Dawn Wood; Alexandra J. Ramadan; Zachary P. L. Laker; Tim Jones; Neil R. Wilson
arXiv: Mesoscale and Nanoscale Physics | 2016
Neil R. Wilson; Paul Nguyen; Kyle Seyler; Pasqual Rivera; Alexander J. Marsden; Zachary P. L. Laker; Gabriel C. Constantinescu; Viktor Kandyba; Alexei Barinov; Nicholas Hine; Xiaodong Xu; David Cobden
Angewandte Chemie | 2015
Concha Bosch-Navarro; Zachary P. L. Laker; Helen R. Thomas; Alexander J. Marsden; Jeremy Sloan; Neil R. Wilson; Jonathan P. Rourke
Archive | 2017
Neil R. Wilson; Paul Nguyen; Kyle Seyler; Pasqual Rivera; Alexander J. Marsden; Zachary P. L. Laker; Gabriel C. Constantinescu; Viktor Kandyba; Alexei Barinov; Nicholas Hine; Xiaodong Xu; David Cobden