NWChem: Past, present, and future

Specialized computational chemistry packages have permanently reshaped the landscape of chemical and materials science by providing tools to support and guide experimental efforts and for the prediction of atomistic and electronic properties. In this regard, electronic structure packages have played...

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Published inThe Journal of chemical physics Vol. 152; no. 18; pp. 184102 - 184127
Main Authors Aprà, E., Bylaska, E. J., de Jong, W. A., Govind, N., Straatsma, T. P., Valiev, M., van Dam, H. J. J., Alexeev, Y., Anchell, J., Aquino, F. W., Autschbach, J., Bauman, N. P., Becca, J. C., Bernholdt, D. E., Bhaskaran-Nair, K., Bogatko, S., Borowski, P., Boschen, J., Brabec, J., Bruner, A., Chen, Y., Chuev, G. N., Cramer, C. J., Daily, J., Deegan, M. J. O., Dunning, T. H., Dupuis, M., Dyall, K. G., Fann, G. I., Fischer, S. A., Fonari, A., Früchtl, H., Gagliardi, L., Garza, J., Ghosh, S., Götz, A. W., Hammond, J., Helms, V., Hermes, E. D., Hirao, K., Hirata, S., Jacquelin, M., Jensen, L., Johnson, B. G., Jónsson, H., Klemm, M., Kobayashi, R., Krishnamoorthy, S., Krishnan, M., Lin, Z., Lins, R. D., Littlefield, R. J., Logsdail, A. J., Lopata, K., Marenich, A. V., Martin del Campo, J., Mejia-Rodriguez, D., Moore, J. E., Mullin, J. M., Nakajima, T., Nascimento, D. R., Nichols, P. J., Nieplocha, J., Otero-de-la-Roza, A., Palmer, B., Pirojsirikul, T., Peng, B., Peverati, R., Pittner, J., Pollack, L., Sadayappan, P., Schatz, G. C., Shelton, W. A., Silverstein, D. W., Smith, D. M. A., Soares, T. A., Song, D., Swart, M., Taylor, H. L., Thomas, G. S., Tipparaju, V., Truhlar, D. G., Tsemekhman, K., Van Voorhis, T., Vázquez-Mayagoitia, Á., Verma, P., Villa, O., Vishnu, A., Vogiatzis, K. D., Wang, D., Weare, J. H., Williamson, M. J., Windus, T. L., Woliński, K., Wu, Q., Yang, C., Yu, Q., Zacharias, M., Zhang, Z., Zhao, Y.
Format Journal Article
LanguageEnglish
Published United States American Institute of Physics 14.05.2020
American Institute of Physics (AIP)
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Summary:Specialized computational chemistry packages have permanently reshaped the landscape of chemical and materials science by providing tools to support and guide experimental efforts and for the prediction of atomistic and electronic properties. In this regard, electronic structure packages have played a special role by using first-principle-driven methodologies to model complex chemical and materials processes. Over the past few decades, the rapid development of computing technologies and the tremendous increase in computational power have offered a unique chance to study complex transformations using sophisticated and predictive many-body techniques that describe correlated behavior of electrons in molecular and condensed phase systems at different levels of theory. In enabling these simulations, novel parallel algorithms have been able to take advantage of computational resources to address the polynomial scaling of electronic structure methods. In this paper, we briefly review the NWChem computational chemistry suite, including its history, design principles, parallel tools, current capabilities, outreach, and outlook.
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Engineering and Physical Sciences Research Council (EPSRC)
USDOE Office of Science (SC), Biological and Environmental Research (BER)
Cray
USDOE
AC05-76RL01830; SC0001136; SC0002139; NA0003525; SC0017868; SC0012462; SC0012702; AC02-05CH11231; AC05-00OR22725; AC04-94AL85000; SC0012704
National Science Foundation (NSF)
National Natural Science Foundation of China (NSFC)
Intel
USDOE Office of Science (SC), Advanced Scientific Computing Research (ASCR). Scientific Discovery through Advanced Computing (SciDAC)
Consejo Nacional de Ciencia y Tecnología (CONACYT)
US Department of the Navy, Office of Naval Research (ONR)
PNNL-SA--151542
Samsung
USDOE Office of Science (SC), Basic Energy Sciences (BES). Chemical Sciences, Geosciences & Biosciences Division
ISSN:0021-9606
1089-7690
1089-7690
DOI:10.1063/5.0004997