David Thompson
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Biography and Research Information
OverviewAI-generated summary
David Thompson's research focuses on materials science and the development of novel devices. He has investigated the synthesis of nanoparticles, including nickel phosphide, using specific mediated pathways. Thompson's work also extends to semiconductor materials, with studies on gallium nitride-based magnetic field sensors and graphene variable capacitors for vibration-based applications. He has published research on tuning supercurrent in Josephson field-effect transistors using h-BN dielectric and examining ambient-pressure ozone treatment for perovskite oxides. Thompson also explores techniques for electrocatalytic systems, including best practices for in-situ and operando methods and the development of versatile electrochemical cells for XAS.
Metrics
- h-index: 13
- Publications: 44
- Citations: 673
Selected Publications
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Multiplexed Integrin Detection and Cancer Cell Classification Using Multicolor Gap-Enhanced Gold Nanorods and Machine Learning Algorithm (2025)
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Best practices for in-situ and operando techniques within electrocatalytic systems (2025)
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Synthesis of Amorphous and Various Phase-Pure Nanoparticles of Nickel Phosphide with Uniform Sizes via a Trioctylphosphine-Mediated Pathway (2024)
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Probing Mixed Phase Metallic Ni/Amorphous Nickel Phosphide Nanocatalysts during Oxygen Evolution Reaction Using Operando X-Ray Absorption Spectroscopy (2024)
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A Versatile Electrochemical Cell for <i>Operando</i> XAS (2024)
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Understanding the Degradation of La<sub>1−<i>x</i> </sub>Sr<sub> <i>x</i> </sub>FeO<sub>3−<i>δ</i> </sub> (0 ≤ x ≤ 1) Perovskite Oxides during the Oxygen Evolution Reaction in Alkaline Solution (2023)
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Thermal stability study of gallium nitride based magnetic field sensor (2023)
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Ambient-pressure ozone treatment enables tuning of oxygen vacancy concentration in the La <sub> 1− <i>x</i> </sub> Sr <sub> <i>x</i> </sub> FeO <sub> 3− <i>δ</i> </sub> (0 ≤ <i>x</i> ≤ 1) perovskite oxides (2022)
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Array of Graphene Variable Capacitors on 100 mm Silicon Wafers for Vibration-Based Applications (2022)
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Tuning Supercurrent in Josephson Field-Effect Transistors Using h-BN Dielectric (2021)
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Integration of multi-layer black phosphorus into photoconductive antennas for THz emission (2020)
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Integration of multi-layer black phosphorus into photoconductive antennas for THz emission (2020)
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Exfoliation and Analysis of Large-area, Air-Sensitive Two-Dimensional Materials (2019)
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Exfoliation and Analysis of Large-area, Air-Sensitive Two-Dimensional Materials (2019)
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Multilayer graphene, Moiré patterns, grain boundaries and defects identified by scanning tunneling microscopy on the m-plane, non-polar surface of SiC (2014)
Collaboration Network
Top Collaborators
- Ambient-pressure ozone treatment enables tuning of oxygen vacancy concentration in the La<sub>1−<i>x</i></sub>Sr<sub><i>x</i></sub>FeO<sub>3−<i>δ</i></sub> (0 ≤ <i>x</i> ≤ 1) perovskite oxides
- Synthesis of Amorphous and Various Phase-Pure Nanoparticles of Nickel Phosphide with Uniform Sizes via a Trioctylphosphine-Mediated Pathway
- Understanding the Degradation of La<sub>1−<i>x</i> </sub>Sr<sub> <i>x</i> </sub>FeO<sub>3−<i>δ</i> </sub> (0 ≤ x ≤ 1) Perovskite Oxides during the Oxygen Evolution Reaction in Alkaline Solution
- Multiplexed Integrin Detection and Cancer Cell Classification Using Multicolor Gap-Enhanced Gold Nanorods and Machine Learning Algorithm
- Probing Mixed Phase Metallic Ni/Amorphous Nickel Phosphide Nanocatalysts during Oxygen Evolution Reaction Using Operando X-Ray Absorption Spectroscopy
- Best practices for in-situ and operando techniques within electrocatalytic systems
- A Versatile Electrochemical Cell for <i>Operando</i> XAS
- Synthesis of Amorphous and Various Phase-Pure Nanoparticles of Nickel Phosphide with Uniform Sizes via a Trioctylphosphine-Mediated Pathway
- Probing Mixed Phase Metallic Ni/Amorphous Nickel Phosphide Nanocatalysts during Oxygen Evolution Reaction Using Operando X-Ray Absorption Spectroscopy
- A Versatile Electrochemical Cell for <i>Operando</i> XAS
- Synthesis of Amorphous and Various Phase-Pure Nanoparticles of Nickel Phosphide with Uniform Sizes via a Trioctylphosphine-Mediated Pathway
- Probing Mixed Phase Metallic Ni/Amorphous Nickel Phosphide Nanocatalysts during Oxygen Evolution Reaction Using Operando X-Ray Absorption Spectroscopy
- Tuning Supercurrent in Josephson Field-Effect Transistors Using h-BN Dielectric
- Array of Graphene Variable Capacitors on 100 mm Silicon Wafers for Vibration-Based Applications
- Ambient-pressure ozone treatment enables tuning of oxygen vacancy concentration in the La<sub>1−<i>x</i></sub>Sr<sub><i>x</i></sub>FeO<sub>3−<i>δ</i></sub> (0 ≤ <i>x</i> ≤ 1) perovskite oxides
- Understanding the Degradation of La<sub>1−<i>x</i> </sub>Sr<sub> <i>x</i> </sub>FeO<sub>3−<i>δ</i> </sub> (0 ≤ x ≤ 1) Perovskite Oxides during the Oxygen Evolution Reaction in Alkaline Solution
- Ambient-pressure ozone treatment enables tuning of oxygen vacancy concentration in the La<sub>1−<i>x</i></sub>Sr<sub><i>x</i></sub>FeO<sub>3−<i>δ</i></sub> (0 ≤ <i>x</i> ≤ 1) perovskite oxides
- Understanding the Degradation of La<sub>1−<i>x</i> </sub>Sr<sub> <i>x</i> </sub>FeO<sub>3−<i>δ</i> </sub> (0 ≤ x ≤ 1) Perovskite Oxides during the Oxygen Evolution Reaction in Alkaline Solution
- Ambient-pressure ozone treatment enables tuning of oxygen vacancy concentration in the La<sub>1−<i>x</i></sub>Sr<sub><i>x</i></sub>FeO<sub>3−<i>δ</i></sub> (0 ≤ <i>x</i> ≤ 1) perovskite oxides
- Understanding the Degradation of La<sub>1−<i>x</i> </sub>Sr<sub> <i>x</i> </sub>FeO<sub>3−<i>δ</i> </sub> (0 ≤ x ≤ 1) Perovskite Oxides during the Oxygen Evolution Reaction in Alkaline Solution
- Synthesis of Amorphous and Various Phase-Pure Nanoparticles of Nickel Phosphide with Uniform Sizes via a Trioctylphosphine-Mediated Pathway
- Probing Mixed Phase Metallic Ni/Amorphous Nickel Phosphide Nanocatalysts during Oxygen Evolution Reaction Using Operando X-Ray Absorption Spectroscopy
- Tuning Supercurrent in Josephson Field-Effect Transistors Using h-BN Dielectric
- Tuning Supercurrent in Josephson Field-Effect Transistors Using h-BN Dielectric
- Tuning Supercurrent in Josephson Field-Effect Transistors Using h-BN Dielectric
- Tuning Supercurrent in Josephson Field-Effect Transistors Using h-BN Dielectric
- Tuning Supercurrent in Josephson Field-Effect Transistors Using h-BN Dielectric
- Tuning Supercurrent in Josephson Field-Effect Transistors Using h-BN Dielectric
- Tuning Supercurrent in Josephson Field-Effect Transistors Using h-BN Dielectric
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