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Jaguar: A high‐performance quantum chemistry software program with strengths in life and materials sciences
Authors:Art D Bochevarov  Edward Harder  Thomas F Hughes  Jeremy R Greenwood  Dale A Braden  Dean M Philipp  David Rinaldo  Mathew D Halls  Jing Zhang  Richard A Friesner
Institution:1. Schr?dinger Inc, , New York, New York, 10036;2. Schr?dinger Inc, , Portland, Oregon, 97204;3. Schr?dinger GmbH, , D‐68165 Mannheim, Germany;4. Schr?dinger Inc, 8910 University Center Lane, , San Diego, California, 92122;5. Department of Chemistry, Columbia University, , New York, New York, 10027
Abstract:Jaguar is an ab initio quantum chemical program that specializes in fast electronic structure predictions for molecular systems of medium and large size. Jaguar focuses on computational methods with reasonable computational scaling with the size of the system, such as density functional theory (DFT) and local second‐order Møller–Plesset perturbation theory. The favorable scaling of the methods and the high efficiency of the program make it possible to conduct routine computations involving several thousand molecular orbitals. This performance is achieved through a utilization of the pseudospectral approximation and several levels of parallelization. The speed advantages are beneficial for applying Jaguar in biomolecular computational modeling. Additionally, owing to its superior wave function guess for transition‐metal‐containing systems, Jaguar finds applications in inorganic and bioinorganic chemistry. The emphasis on larger systems and transition metal elements paves the way toward developing Jaguar for its use in materials science modeling. The article describes the historical and new features of Jaguar, such as improved parallelization of many modules, innovations in ab initio pKa prediction, and new semiempirical corrections for nondynamic correlation errors in DFT. Jaguar applications in drug discovery, materials science, force field parameterization, and other areas of computational research are reviewed. Timing benchmarks and other results obtained from the most recent Jaguar code are provided. The article concludes with a discussion of challenges and directions for future development of the program. © 2013 Wiley Periodicals, Inc.
Keywords:ab initio  density functional theory  life sciences  materials sciences  software
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