Roadmap on electronic structure codes in the exascale era

Author:

Gavini VikramORCID,Baroni StefanoORCID,Blum VolkerORCID,Bowler David RORCID,Buccheri AlexanderORCID,Chelikowsky James RORCID,Das SambitORCID,Dawson William,Delugas PietroORCID,Dogan MehmetORCID,Draxl ClaudiaORCID,Galli GiuliaORCID,Genovese LuigiORCID,Giannozzi PaoloORCID,Giantomassi Matteo,Gonze XavierORCID,Govoni MarcoORCID,Gygi FrançoisORCID,Gulans AndrisORCID,Herbert John MORCID,Kokott SebastianORCID,Kühne Thomas DORCID,Liou Kai-HsinORCID,Miyazaki Tsuyoshi,Motamarri PhaniORCID,Nakata Ayako,Pask John E,Plessl ChristianORCID,Ratcliff Laura E,Richard Ryan MORCID,Rossi MarianaORCID,Schade RobertORCID,Scheffler MatthiasORCID,Schütt OleORCID,Suryanarayana PhanishORCID,Torrent Marc,Truflandier Lionel,Windus Theresa LORCID,Xu Qimen,Yu Victor W-ZORCID,Perez DORCID

Abstract

Abstract Electronic structure calculations have been instrumental in providing many important insights into a range of physical and chemical properties of various molecular and solid-state systems. Their importance to various fields, including materials science, chemical sciences, computational chemistry, and device physics, is underscored by the large fraction of available public supercomputing resources devoted to these calculations. As we enter the exascale era, exciting new opportunities to increase simulation numbers, sizes, and accuracies present themselves. In order to realize these promises, the community of electronic structure software developers will however first have to tackle a number of challenges pertaining to the efficient use of new architectures that will rely heavily on massive parallelism and hardware accelerators. This roadmap provides a broad overview of the state-of-the-art in electronic structure calculations and of the various new directions being pursued by the community. It covers 14 electronic structure codes, presenting their current status, their development priorities over the next five years, and their plans towards tackling the challenges and leveraging the opportunities presented by the advent of exascale computing.

Funder

EU MaX Centre of Excellence for HPC applications

Très Grand Centre de Calcul du CEA

European Union’s Horizon 2020 research and innovation program

JSPS Grant-in-Aid for Scientific Research

U.S. DoE Exascale Computing Project

U.S. DOE, Office of Science, Basic Energy Sciences, Materials Sciences and Engineering Division

EPSRC Early Career Research Fellowship

CEA-RIKEN collaborative action

MaX EU center of Excellence

JSPS Grant-in-Aid for Transformative Research Areas

Toyota Research Institute

US Department of Energy, Basic Energy Sciences

Deutsche Forschungsgemeinschaft

ERC Advanced Grant TEC1P

National Science Foundation

U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences, Division of Chemical Sciences, Geosciences, and Biosciences

U.S. Army Research Office

Department of Science and Technology, India

U.S. Air Force Office of Scientific Research

NFDI consortium FAIRmat

Publisher

IOP Publishing

Subject

Computer Science Applications,Mechanics of Materials,Condensed Matter Physics,General Materials Science,Modeling and Simulation

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