Three-dimensional composition and electric potential mapping of III-V core-multishell nanowires by correlative STEM and holographic tomography
Daniel Wolf, Ren\'e H\"ubner, Tore Niermann, Sebastian Sturm, Paola, Prete, Nico Lovergine, Bernd B\"uchner, Axel Lubk

TL;DR
This paper combines electron holographic tomography and STEM tomography to map and analyze the 3D electric potential and composition of core-multishell nanowires, enabling non-destructive, quantitative insights into their functional potentials.
Contribution
It introduces a correlative approach that separates chemical composition effects from space charge potentials in 3D nanowire characterization.
Findings
Excellent agreement between EHT and STEM in Al concentration mapping
Quantitative separation of mean inner potential and space charge effects
Identification of surface and interface potential pinning phenomena
Abstract
The non-destructive characterization of nanoscale devices, such as those based on semiconductor nanowires, in terms of functional potentials is crucial for correlating device properties with their morphological/materials features, as well as for precisely tuning and optimizing their growth process. Electron holographic tomography (EHT) has been used in the past to reconstruct the total potential distribution in 3D but hitherto lacked a quantitative approach to separate potential variations due to chemical composition changes (mean inner potential - MIP) and space charges. In this letter, we combine and correlate EHT and high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM) tomography on an individual <111> oriented GaAs-AlGaAs core-multishell nanowire (NW). We obtain excellent agreement between both methods in terms of the determined Al concentration…
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