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Nova · Professor Researcher · re-ranking top 20…
Brian Brooks

Brian Brooks

· TDM 182A Visiting Artist (Fall 2018)Verified

Harvard University · Theatre, Dance, and Media Studies

Active 1968–2024

h-index90
Citations103.5k
Papers635125 last 5y
Funding$52.4M
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Research topics

  • Computer Science
  • Chemistry
  • Machine Learning
  • Programming language
  • Computational science
  • Computational chemistry
  • Theoretical computer science
  • Artificial Intelligence
  • Quantum mechanics
  • Mathematics
  • Engineering
  • Systems engineering
  • Computer graphics (images)
  • Biochemistry
  • Parallel computing
  • Database
  • Physics
  • Physical chemistry
  • Statistics
  • Materials science
  • Nanotechnology
  • Operating system

Selected publications

  • Protein p <i>K</i> <sub>a</sub> Prediction by Tree-Based Machine Learning

    Journal of Chemical Theory and Computation · 2022 · 35 citations

    Senior authorCorresponding
    • Machine Learning
    • Artificial Intelligence
    • Computer Science

    values close to the physiological pH.

  • Software for the frontiers of quantum chemistry: An overview of developments in the Q-Chem 5 package

    The Journal of Chemical Physics · 2021 · 1305 citations

    • Computer Science
    • Computer Science
    • Computational science

    This article summarizes technical advances contained in the fifth major release of the Q-Chem quantum chemistry program package, covering developments since 2015. A comprehensive library of exchange-correlation functionals, along with a suite of correlated many-body methods, continues to be a hallmark of the Q-Chem software. The many-body methods include novel variants of both coupled-cluster and configuration-interaction approaches along with methods based on the algebraic diagrammatic construction and variational reduced density-matrix methods. Methods highlighted in Q-Chem 5 include a suite of tools for modeling core-level spectroscopy, methods for describing metastable resonances, methods for computing vibronic spectra, the nuclear-electronic orbital method, and several different energy decomposition analysis techniques. High-performance capabilities including multithreaded parallelism and support for calculations on graphics processing units are described. Q-Chem boasts a community of well over 100 active academic developers, and the continuing evolution of the software is supported by an "open teamware" model and an increasingly modular design.

  • CHARMM-GUI Nanomaterial Modeler for Modeling and Simulation of Nanomaterial Systems

    Journal of Chemical Theory and Computation · 2021 · 192 citations

    • Computer Science
    • Computer Science
    • Systems engineering

    = 12 Å (12 cutoff), force-based switching over 10 to 12 Å (10-12 fsw), and LJ particle mesh Ewald with no cutoff (LJPME). The FF parameters with these LJ cutoff methods are extensively validated by reproducing structural, interfacial, and mechanical properties. We find that the computed density and surface energies are in good agreement with reported experimental results, although the simulation results increase in the following order: 10-12 fsw <12 cutoff < LJPME. Nanomaterials in which LJ interactions are a major component show relatively higher deviations (up to 4% in density and 8% in surface energy differences) compared with the experiment. Nanomaterial Modeler's capability is also demonstrated by generating complex systems of nanomaterial-biomolecule and nanomaterial-polymer interfaces with a combination of existing CHARMM-GUI modules. We hope that Nanomaterial Modeler can be used to carry out innovative nanomaterial modeling and simulations to acquire insight into the structure, dynamics, and underlying mechanisms of complex nanomaterial-containing systems.

  • P <scp>SI4</scp> 1.4: Open-source software for high-throughput quantum chemistry

    The Journal of Chemical Physics · 2020 · 976 citations

    • Computer Science
    • Computer Science
    • Computational science

    PSI4 is a free and open-source ab initio electronic structure program providing implementations of Hartree-Fock, density functional theory, many-body perturbation theory, configuration interaction, density cumulant theory, symmetry-adapted perturbation theory, and coupled-cluster theory. Most of the methods are quite efficient, thanks to density fitting and multi-core parallelism. The program is a hybrid of C++ and Python, and calculations may be run with very simple text files or using the Python API, facilitating post-processing and complex workflows; method developers also have access to most of PSI4's core functionalities via Python. Job specification may be passed using The Molecular Sciences Software Institute (MolSSI) QCSCHEMA data format, facilitating interoperability. A rewrite of our top-level computation driver, and concomitant adoption of the MolSSI QCARCHIVE INFRASTRUCTURE project, makes the latest version of PSI4 well suited to distributed computation of large numbers of independent tasks. The project has fostered the development of independent software components that may be reused in other quantum chemistry programs.

Recent grants

Frequent coauthors

  • Joseph D. Larkin

    Eckerd College

    196 shared
  • Charles W. Bock

    Thomas Jefferson University

    175 shared
  • George D. Markham

    Naples Anesthesia & Physician Associates

    150 shared
  • Xiongwu Wu

    National Heart Lung and Blood Institute

    138 shared
  • Krishna L. Bhat

    Widener University

    134 shared
  • Andrew C. Simmonett

    Science Wares (United States)

    111 shared
  • H. Lee Woodcock

    University of South Florida

    105 shared
  • Benjamin T. Miller

    Evelina London Children's Healthcare

    102 shared
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