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Dive into the research topics where Bastiaan J. Braams is active.

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Featured researches published by Bastiaan J. Braams.


Journal of Chemical Physics | 2011

Flexible, ab initio potential, and dipole moment surfaces for water. I. Tests and applications for clusters up to the 22-mer

Yimin Wang; Xinchuan Huang; Benjamin C. Shepler; Bastiaan J. Braams; Joel M. Bowman

We report full-dimensional, ab initio potential energy and dipole moment surfaces, denoted PES and DMS, respectively, for arbitrary numbers of water monomers. The PES is a sum of 1-, 2-, and 3-body potentials which can also be augmented by semiempirical long-range higher-body interactions. The 1-body potential is a spectroscopically accurate monomer potential, and the 2- and 3-body potentials are permutationally invariant fits to tens of thousands of CCSD(T)/aug-cc-pVTZ and MP2/aug-cc-pVTZ electronic energies, respectively. The DMS is a sum of 1- and 2-body DMS, which are covariant fits to tens of thousands MP2/aug-cc-pVTZ dipole moment data. We present the details of these new 2- and 3-body potentials and then extensive applications and tests of this PES are made to the structures, classical binding energies, and harmonic frequencies of water clusters up to the 22-mer. In addition, we report the dipole moment for these clusters at various minima and compare the results against available and new ab initio calculations.


Journal of Physics B | 2016

The Virtual Atomic and Molecular Data Centre (VAMDC) Consortium

M. L. Dubernet; Bobby Antony; Y. A. Ba; Yu L. Babikov; Klaus Bartschat; V. Boudon; Bastiaan J. Braams; H. K. Chung; F. Daniel; F. Delahaye; G. Del Zanna; J. de Urquijo; Milan S. Dimitrijevic; A. Domaracka; M. Doronin; Brian J. Drouin; C. P. Endres; Alexander Fazliev; S. V. Gagarin; Iouli E. Gordon; P. Gratier; Ulrike Heiter; Christian Hill; D. Jevremović; C. Joblin; A. Kasprzak; E. Krishnakumar; G. Leto; P. A. Loboda; T. Louge

The Virtual Atomic and Molecular Data Centre (VAMDC) Consortium is a worldwide consortium which federates atomic and molecular databases through an e-science infrastructure and an organisation to support this activity. About 90% of the inter-connected databases handle data that are used for the interpretation of astronomical spectra and for modelling in many fields of astrophysics. Recently the VAMDC Consortium has connected databases from the radiation damage and the plasma communities, as well as promoting the publication of data from Indian institutes. This paper describes how the VAMDC Consortium is organised for the optimal distribution of atomic and molecular data for scientific research. It is noted that the VAMDC Consortium strongly advocates that authors of research papers using data cite the original experimental and theoretical papers as well as the relevant databases.


Journal of Physics D | 2016

Uncertainty Estimates for Theoretical Atomic and Molecular Data

H. K. Chung; Bastiaan J. Braams; Klaus Bartschat; Attila G. Császár; G. W. F. Drake; T. Kirchner; Viatcheslav Kokoouline; Jonathan Tennyson

Sources of uncertainty are reviewed for calculated atomic and molecular data that are important for plasma modeling: atomic and molecular structures and cross sections for electron-atom, electron-molecule, and heavy particle collisions. We concentrate on model uncertainties due to approximations to the fundamental many-body quantum mechanical equations and we aim to provide guidelines to estimate uncertainties as a routine part of computations of data for structure and scattering.


Molecular Physics | 2010

Ro-vibrational spectra of C2H2 based on variational nuclear motion calculations

Andrea Urru; Igor N. Kozin; G. Mulas; Bastiaan J. Braams; Jonathan Tennyson

A published ab initio-based potential energy surface and newly constructed dipole moment surface of acetylene have been used to compute vibrational band intensities. The line intensity calculations employed the variational nuclear motion code WAVR4 for computation of wave functions and energy levels, and a newly developed code DIPOLE4 for computation of dipole transitions. Owing to the high computational cost of J > 0 transitions using direct variational methods only J = 0 and J = 1 states and transitions have been computed variationally. The intensities of J > 1 transitions were extrapolated from J = 0 and J = 1 using Hönl–London coefficients. The resulting effective rotational constants B and transition intensities are compared with experimental data for the (3ν4 + ν5) combination band, the ν3 and the ν5 fundamental band. The prospects of using this procedure for extensive calculations of a hot line list, important for cool stars and extrasolar planets are discussed.


Plasma Sources Science and Technology | 2017

QDB: a new database of plasma chemistries and reactions

Jonathan Tennyson; Sara Rahimi; Christian Hill; Lisa Tse; Anuradha Vibhakar; Dolica Akello-Egwel; Daniel Brown; Anna Dzarasova; James R. Hamilton; Dagmar Jaksch; Sebastian Mohr; Keir Wren-Little; Johannes Bruckmeier; Ankur Agarwal; Klaus Bartschat; Annemie Bogaerts; Jean-Paul Booth; Matthew Goeckner; K. Hassouni; Yukikazu Itikawa; Bastiaan J. Braams; E. Krishnakumar; Annarita Laricchiuta; Nigel J. Mason; Sumeet C. Pandey; Zoran Lj. Petrovic; Yi Kang Pu; Alok Ranjan; Shahid Rauf; Julian Schulze

One of the most challenging and recurring problems when modeling plasmas is the lack of data on the key atomic and molecular reactions that drive plasma processes. Even when there are data for some reactions, complete and validated datasets of chemistries are rarely available. This hinders research on plasma processes and curbs development of industrial applications. The QDB project aims to address this problem by providing a platform for provision, exchange, and validation of chemistry datasets. A new data model developed for QDB is presented. QDB collates published data on both electron scattering and heavy-particle reactions. These data are formed into reaction sets, which are then validated against experimental data where possible. This process produces both complete chemistry sets and identifies key reactions that are currently unreported in the literature. Gaps in the datasets can be filled using established theoretical methods. Initial validated chemistry sets for SF 6 /CF 4 /O 2 and SF 6 /CF 4 /N 2 /H 2 are presented as examples.


THE 17TH INTERNATIONAL CONFERENCE ON ATOMIC PROCESSES IN PLASMAS (ICAPIP) | 2012

Databases and coordinated research projects at the IAEA on atomic processes in plasmas

Bastiaan J. Braams; H.-K. Chung

The Atomic and Molecular Data Unit at the IAEA works with a network of national data centres to encourage and coordinate production and dissemination of fundamental data for atomic, molecular and plasma-material interaction (A+M/PMI) processes that are relevant to the realization of fusion energy. The Unit maintains numerical and bibliographical databases and has started a Wiki-style knowledge base. The Unit also contributes to A+M database interface standards and provides a search engine that offers a common interface to multiple numerical A+M/PMI databases. Coordinated Research Projects (CRPs) bring together fusion energy researchers and atomic, molecular and surface physicists for joint work towards the development of new data and new methods. The databases and current CRPs on A+M/PMI processes are briefly described here.


Proceedings of the National Academy of Sciences | 2008

Roaming Dynamics: the Dominant Pathway to Molecular Products in Acetaldehyde Photodissociation.

David L. Osborn; Talitha M. Selby; Brianna R. Heazlewood; Meredith J. T. Jordan; Scott H. Kable; Benjamin C. Shepler; Bastiaan J. Braams; Joel M. Bowman


Atomic Data and Nuclear Data Tables | 2018

Iso-nuclear tungsten dielectronic recombination rates for use in magnetically-confined fusion plasmas

Duck-Hee Kwon; Wonwook Lee; S. P. Preval; C P Ballance; Ehud Behar; J. Colgan; Christopher J. Fontes; Tomohide Nakano; Bowen Li; Xiaobin Ding; Chenzhong Z. Dong; Yanbiao B. Fu; N. R. Badnell; M. O'Mullane; H.-K. Chung; Bastiaan J. Braams


Chemical Physics Letters | 2013

Analytical potential energy surface for O + C2H2 system

Sophya Garashchuk; Vitaly A. Rassolov; Bastiaan J. Braams


Journal of Nuclear Materials | 2015

JNM theme issue on models and data for plasma-material interaction and hydrogen retention in fusion devices

Bastiaan J. Braams; H.-K. Chung

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H.-K. Chung

International Atomic Energy Agency

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Christian Hill

University College London

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H. K. Chung

International Atomic Energy Agency

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E. Krishnakumar

Tata Institute of Fundamental Research

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Anna Dzarasova

University College London

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