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Physics

D-Index
99
Citations
69104
World Ranking
1674
National Ranking
41

Overview

J. Munch is affiliated with the University of Adelaide in Australia and has contributed to multiple areas of research within engineering and physics. Their work spans several interconnected fields and subfields that demonstrate a broad scientific approach.

Their main fields of study include:

  • Engineering
  • Physics and Astronomy

Within these primary categories, J. Munch has also engaged with specialized subfields such as:

  • Astronomy and Astrophysics
  • Ocean Engineering
  • Atomic and Molecular Physics, and Optics
  • Civil and Structural Engineering
  • Mechanical Engineering

J. Munch's research topics encompass a variety of scientific subjects, including:

  • Pulsars and Gravitational Waves Research
  • Geophysics and Sensor Technology
  • Mechanical and Optical Resonators
  • Soil Mechanics and Vehicle Dynamics
  • Agricultural Engineering and Mechanization

They have contributed to scholarly publications, primarily in the venue:

  • Classical and Quantum Gravity

Their recent published paper includes:

  • "A cryogenic silicon interferometer for gravitational-wave detection," 2020, Classical and Quantum Gravity

This paper is authored alongside other researchers, with frequent coauthors being:

  • R. X. Adhikari
  • K. Arai
  • A. F. Brooks
  • C Wipf
  • O Aguiar

Best Publications

  • GW170817: observation of gravitational waves from a binary neutron star inspiral

    B. P. Abbott;R. Abbott;T. D. Abbott;F. Acernese

  • GWTC-1: A Gravitational-Wave Transient Catalog of Compact Binary Mergers Observed by LIGO and Virgo during the First and Second Observing Runs

    B. P. Abbott;R. Abbott

  • Gravitational Waves and Gamma-Rays from a Binary Neutron Star Merger: GW170817 and GRB 170817A

    B. P. Abbott;R. Abbott;T. D. Abbott;F. Acernese

  • GW170817: Measurements of Neutron Star Radii and Equation of State.

    B. P. Abbott;R. Abbott;T. D. Abbott;F. Acernese

  • Prospects for Observing and Localizing Gravitational-Wave Transients with Advanced LIGO, Advanced Virgo and KAGRA

    B. P. Abbott;R. Abbott;T. D. Abbott;M. R. Abernathy

  • Binary Black Hole Mergers in the First Advanced LIGO Observing Run

    B. P. Abbott;R. Abbott

  • Predictions for the Rates of Compact Binary Coalescences Observable by Ground-based Gravitational-wave Detectors

    J. Abadie;B. P. Abbott

  • GW170608: Observation of a 19-solar-mass Binary Black Hole Coalescence

    B. P. Abbott;R. Abbott

  • Properties of the Binary Neutron Star Merger GW170817

    B. P. Abbott;R. Abbott;T. D. Abbott;F. Acernese

  • Characterization of the LIGO detectors during their sixth science run

    J. Aasi;J. Abadie;B. P. Abbott;R. Abbott

  • A gravitational-wave standard siren measurement of the Hubble constant

    B. P. Abbott;R. Abbott;T. D. Abbott;F. Acernese;F. Acernese

  • Binary Black Hole Population Properties Inferred from the First and Second Observing Runs of Advanced LIGO and Advanced Virgo

    B. P. Abbott;R. Abbott

  • A gravitational wave observatory operating beyond the quantum shot-noise limit

    J. Abadie;B. P. Abbott;R. Abbott;T. D. Abbott

  • GW190521: A Binary Black Hole Merger with a Total Mass of 150 M

    R. Abbott;T. D. Abbott;S. Abraham;F. Acernese

  • Prospects for Observing and Localizing Gravitational-Wave Transients with Advanced LIGO, Advanced Virgo and KAGRA

    B. P. Abbott

  • GW190814: Gravitational Waves from the Coalescence of a 23 M$_\odot$ Black Hole with a 2.6 M$_\odot$ Compact Object

    R. Abbott;T. D. Abbott

  • Population Properties of Compact Objects from the Second LIGO-Virgo Gravitational-Wave Transient Catalog

    R. Abbott;T. D. Abbott;S. Abraham;F. Acernese

  • ASTROPHYSICAL IMPLICATIONS OF THE BINARY BLACK HOLE MERGER GW150914

    B. P. Abbott;R. Abbott;T. D. Abbott;M. R. Abernathy

  • Directional Limits on Persistent Gravitational Waves from Advanced LIGO’s First Observing Run

    B. P. Abbott;R. Abbott;T. D. Abbott;M. R. Abernathy

  • Exploring the Sensitivity of Next Generation Gravitational Wave Detectors

    B. P. Abbott;R. Abbott;T. D. Abbott;M. R. Abernathy

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