Holistic nanowire laser characterization as a route to optimal design
Stephen Church, Nikesh Patel, Ruqaiya Al-Abri, Nawal Al-Amairi, Yunyan, Zhang, Huiyun Liu, Patrick Parkinson

TL;DR
This study presents a comprehensive high-throughput characterization of nanowire lasers, revealing how quantum well properties and non-radiative recombination influence performance, guiding future optimization strategies.
Contribution
The paper introduces a large-scale correlative analysis method for nanowire lasers, linking manufacturing, material, and optical properties to performance, which was previously difficult to achieve experimentally.
Findings
Lasing wavelength and threshold are linked to quantum well width.
Threshold correlates negatively with non-radiative recombination lifetime.
Quantum well quality limits laser threshold more than cavity quality.
Abstract
Nanowire lasers are sought for near-field and on-chip photonic applications as they provide integrable, coherent and monochromatic radiation. A wavelength-scale nanowire acts as both the gain medium and the cavity for the lasing action: the functional performance (threshold and wavelength) is therefore dependent on both the opto-electronic and crystallographic properties of each nanowire. However, scalable bottom-up manufacturing techniques often suffer from inter-nanowire variation, leading to, often dramatic, differences in yield and performance between individual nanowires. Establishing the relationship between manufacturing controls, geometric and material properties and the lasing performance is a crucial step towards optimisation, however, this is challenging to achieve experimentally due to the complex interdependance of such properties. Here, we present a high-throughput…
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Taxonomy
TopicsNanowire Synthesis and Applications · Semiconductor Quantum Structures and Devices · Photonic and Optical Devices
