Thomas R. Jones
Engineering · Purdue University West Lafayette
Publications
67
Citations
1,890
Est. group size
~2
Recurring co-author estimate
Active years
58
Publishing since 1968
Thomas R. Jones works in microwave and radio-frequency (RF) engineering, focusing on components used to generate, filter, switch, and amplify high-frequency electromagnetic signals for wireless and communication systems. Much of the recent work involves time-varying and space-time modulated circuits (components whose properties change rapidly over time to achieve nonreciprocal or amplifying behavior), as well as tunable filters, switches, and phase shifters built using waveguide and semiconductor plasma techniques for sub-terahertz frequencies. This research area is relevant to next-generation wireless systems, radar, and high-frequency communication hardware.
Publication output has fluctuated over the past decade, with a dip around 2018 and 2021, but activity has picked back up since 2022, averaging about 5.4 papers per year over the last five years.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Nonreciprocal signal growth in space-time modulated transmission lines
Scientific Reports · 2025
- Continuously Reconfigurable and High-Efficiency 70 W Power Amplifiers for 1–5 GHz
IEEE Transactions on Microwave Theory and Techniques · 2025
- Sub-THz Phase Shifter Using a Photoconductive Solid-State Plasma Evanescent-Mode Waveguide Switched Stub
2025
- Wideband Sub-Thz Evanescent-Mode Waveguide Switch Using Reconfigurable Photogenerated Solid-State Plasma Elements
2025
- Signal growth in a pure time-modulated transmission line and the loss effect
Royal Society Open Science · 2024
- Sub-THz Photoconductive Evanescent-Mode Waveguide SPST Switch
IEEE Microwave and Wireless Technology Letters · 2024
- Signal Amplification in Time-Modulated RF Components with Infinite Superluminality
2024
- Wideband Sub-THz Photogenerated Solid-State Plasma Evanescent-Mode Waveguide Switch
2024
- Author response for "Signal growth in a pure time-modulated transmission line and the loss effect"
2024
- Author response for "Signal growth in a pure time-modulated transmission line and the loss effect"
2024
- Resonant Impedance Tuners: Theory, Design, Power Handling, and Repeatability
IEEE Transactions on Microwave Theory and Techniques · 2023
- High-Power Tunable FDD Front-End Employing a Balanced CMOS N-Path Receiver and Evanescent-Mode Cavity Filters
2023
- Signal Amplification in a Time-Modulated Transmission Line and the Loss Effect
arXiv (Cornell University) · 2023
- Reconfigurable non-reciprocal wave growth in spatiotemporal modulated 1-D crystal
arXiv (Cornell University) · 2023
- High-Q High Power Tunable Filters Manufactured With Injection Molding Technology
IEEE Access · 2022
- IEEE Transactions on Microwave Theory and Techniques×8
- JACOW×5
- IEEE Microwave and Wireless Components Letters×4
- arXiv (Cornell University)×3
- IEEE Access×2
- Mohammad Abu Khater
Engineering · Purdue University West Lafayette
- Raul O. Ribeiro
Engineering · The Ohio State University
- Pintu Adhikari
Engineering · Purdue University West Lafayette
- Michael D. Sinanis
Engineering · Purdue University West Lafayette
- Zahra Manzoor
Engineering · Purdue University West Lafayette
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 20, 2026.
Claim or correct this profile