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D-Index & Metrics

Electronics and Electrical Engineering

D-Index
37
Citations
5003
World Ranking
5183
National Ranking
1794

Overview

Songbin Gong is affiliated with the University of Illinois at Urbana-Champaign in the United States. Their research primarily spans the fields of Engineering and Physics and Astronomy, with focused subfields including Biomedical Engineering, Atomic and Molecular Physics and Optics, Electrical and Electronic Engineering, Materials Chemistry, and Mechanics of Materials.

Their work covers a variety of topics related to acoustic and optical technologies. Main areas of research include:

  • Acoustic Wave Resonator Technologies
  • Ferroelectric and Piezoelectric Materials
  • Photorefractive and Nonlinear Optics
  • Photonic and Optical Devices
  • Mechanical and Optical Resonators
  • Advanced Fiber Laser Technologies
  • Ultrasonics and Acoustic Wave Propagation

Songbin Gong has published extensively in notable venues. Frequent publication outlets include:

  • IEEE Transactions on Microwave Theory and Techniques
  • IEEE Transactions on Ultrasonics Ferroelectrics and Frequency Control
  • Journal of Microelectromechanical Systems
  • Optics Express
  • Journal of Applied Physics

Their recent papers, illustrating the scope and focus of their research, include:

  • "Surface Acoustic Wave Devices Using Lithium Niobate on Silicon Carbide" (2020), IEEE Transactions on Microwave Theory and Techniques
  • "A1 Resonators in 128° Y-cut Lithium Niobate with Electromechanical Coupling of 46.4%" (2020), Journal of Microelectromechanical Systems
  • "Microwave Acoustic Devices: Recent Advances and Outlook" (2021), IEEE Journal of Microwaves
  • "10-60-GHz Electromechanical Resonators Using Thin-Film Lithium Niobate" (2020), IEEE Transactions on Microwave Theory and Techniques
  • "RF acoustic microsystems based on suspended lithium niobate thin films: advances and outlook" (2021), Journal of Micromechanics and Microengineering

Frequent collaborators in their research include:

  • Yansong Yang
  • Ruochen Lu
  • Ahmed E. Hassanien
  • Liuqing Gao
  • Lynford L. Goddard

Best Publications

  • Design and Analysis of Lithium–Niobate-Based High Electromechanical Coupling RF-MEMS Resonators for Wideband Filtering

    Songbin Gong;G. Piazza

  • Surface Acoustic Wave Devices Using Lithium Niobate on Silicon Carbide

    Shibin Zhang;Ruochen Lu;Hongyan Zhou;Steffen Link

  • A1 Resonators in 128° Y-cut Lithium Niobate with Electromechanical Coupling of 46.4%

    Ruochen Lu;Yansong Yang;Steffen Link;Songbin Gong

  • 5 Ghz lithium niobate MEMS resonators with high FoM of 153

    Yansong Yang;Anming Gao;Ruochen Lu;Songbin Gong

  • 10–60-GHz Electromechanical Resonators Using Thin-Film Lithium Niobate

    Yansong Yang;Ruochen Lu;Liuqing Gao;Songbin Gong

  • Microwave Acoustic Devices: Recent Advances and Outlook

    Songbin Gong;Ruochen Lu;Yansong Yang;Liuqing Gao

  • Accurate Extraction of Large Electromechanical Coupling in Piezoelectric MEMS Resonators

    Ruochen Lu;Ming-Huang Li;Yansong Yang;Tomas Manzaneque

  • A 60-GHz 2-bit Switched-Line Phase Shifter Using SP4T RF-MEMS Switches

    Songbin Gong;Hui Shen;N Scott Barker

  • 4.5 GHz Lithium Niobate MEMS Filters With 10% Fractional Bandwidth for 5G Front-Ends

    Yansong Yang;Ruochen Lu;Liuqing Gao;Songbin Gong

  • Figure-of-Merit Enhancement for Laterally Vibrating Lithium Niobate MEMS Resonators

    Songbin Gong;Gianluca Piazza

  • Toward Ka Band Acoustics: Lithium Niobate Asymmetrical Mode Piezoelectric MEMS Resonators

    Yansong Yang;Ruochen Lu;Tomas Manzaneque;Songbin Gong

  • RF Acoustic Microsystems Based on Suspended Lithium Niobate Thin Films: Advances and Outlook

    Ruochen Lu;Songbin Gong

  • Three-dimensional radio-frequency transformers based on a self-rolled-up membrane platform

    Wen Huang;Jingchao Zhou;Paul J. Froeter;Kathy Walsh

  • Ultra-Small, High-Frequency, and Substrate-Immune Microtube Inductors Transformed from 2D to 3D

    Xin Yu;Wen Huang;Moyang Li;Thomas M. Comberiate

  • Acoustically driven electromagnetic radiating elements.

    Ahmed E. Hassanien;Michael Breen;Ming Huang Li;Songbin Gong

  • Enabling Higher Order Lamb Wave Acoustic Devices With Complementarily Oriented Piezoelectric Thin Films

    Ruochen Lu;Yansong Yang;Steffen Link;Songbin Gong

  • Surface-Acoustic-Wave Devices Based on Lithium Niobate and Amorphous Silicon Thin Films on a Silicon Substrate

    Unknown

  • High $Q$ Antisymmetric Mode Lithium Niobate MEMS Resonators With Spurious Mitigation

    Yansong Yang;Ruochen Lu;Songbin Gong

  • Analysis and Removal of Spurious Response in SH0 Lithium Niobate MEMS Resonators

    Yong-Ha Song;Ruochen Lu;Songbin Gong

  • Low-Loss and Wideband Acoustic Delay Lines

    Tomas Manzaneque;Ruochen Lu;Yansong Yang;Songbin Gong

  • Toward Ka Band Acoustics: Lithium Niobate Asymmetrical Mode Piezoelectric MEMS Resonators.

    Yansong Yang;Ruochen Lu;Tomas Manzaneque;Songbin Gong

  • A Radio Frequency Non-reciprocal Network Based on Switched Acoustic Delay Lines

    Ruochen Lu;Tomas Manzaneque;Yansong Yang;Liuqing Gao

  • A Radio Frequency Nonreciprocal Network Based on Switched Acoustic Delay Lines

    Ruochen Lu;Tomas Manzaneque;Yansong Yang;Liuqing Gao

Frequent Co-Authors

Gianluca Piazza
Gianluca Piazza Carnegie Mellon University
Xiuling Li
Xiuling Li University of Illinois at Urbana-Champaign
Benton H. Calhoun
Benton H. Calhoun University of Virginia
Daniel Wasserman
Daniel Wasserman The University of Texas at Austin
Dimitrios Peroulis
Dimitrios Peroulis Purdue University West Lafayette
Volker J. Sorger
Volker J. Sorger George Washington University
James S. Harris
James S. Harris Stanford University
Paul V. Braun
Paul V. Braun University of Illinois at Urbana-Champaign
Eric Pop
Eric Pop Stanford University
Ralph G. Nuzzo
Ralph G. Nuzzo University of Illinois at Urbana-Champaign

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