# HG changeset patch # User muon-spectroscopy-computational-project # Date 1675438800 0 # Node ID 620ab6826b9b3736d0ac69d373bf2d8239e75ea4 # Parent d8146a73b011dcdbe4741f47e44554507388d2d9 planemo upload for repository https://github.com/muon-spectroscopy-computational-project/muon-galaxy-tools/main/pm_symmetry commit 4f06b404d8b7fb83995f3052faa7e2ec7811f507 diff -r d8146a73b011 -r 620ab6826b9b pm_symmetry.xml --- a/pm_symmetry.xml Thu Sep 15 10:25:23 2022 +0000 +++ b/pm_symmetry.xml Fri Feb 03 15:40:00 2023 +0000 @@ -1,22 +1,22 @@ - + generate Wyckoff points symmetry report - 0.2.1 + 0.2.3 - 1 + 0 - @software{pymuon-suite, - author = {Sturniolo, Simone and Liborio, Leandro and Chadwick, Eli and Murgatroyd, Laura and Laverack, Adam and {Muon Spectroscopy Computational Project}}, + @software{Sturniolo_pymuon-suite_2022, + author = {Sturniolo, Simone and Liborio, Leandro and Chadwick, Eli and Murgatroyd, Laura and Laverack, Adam and Mudaraddi, Anish and {Muon Spectroscopy Computational Project}}, license = {GPL-3.0}, + month = {8}, title = {{pymuon-suite}}, url = {https://github.com/muon-spectroscopy-computational-project/pymuon-suite}, - version = {v0.2.1}, - month = {2}, - year = {2022}, - doi = {} + version = {v0.2.3}, + doi = {10.5281/zenodo.7025644}, + year = {2022} } @@ -29,8 +29,8 @@ pymuonsuite out.txt ]]> @@ -63,29 +63,13 @@ usage: pm-symmetry structure Given an input structure, generates a Wyckoff points symmetry report for that structure. + + PyMuonSuite is distributed under the GPLv3 license. This tool wrapper is distributed under the MIT license. ]]> @TOOL_CITATION@ - - @article{doi:10.1063/5.0012381, - author = {Sturniolo,Simone and Liborio,Leandro }, - title = {Computational prediction of muon stopping sites: A novel take on the unperturbed electrostatic potential method}, - journal = {The Journal of Chemical Physics}, - volume = {153}, - number = {4}, - pages = {044111}, - year = {2020}, - doi = {10.1063/5.0012381}, - URL = { - https://doi.org/10.1063/5.0012381 - }, - eprint = { - https://doi.org/10.1063/5.0012381 - }, - abstract = { Finding the stopping site of the muon in a muon-spin relaxation experiment is one of the main problems of muon spectroscopy, and computational techniques that make use of quantum chemistry simulations can be of great help when looking for this stopping site. The most thorough approach would require the use of simulations, such as Density Functional Theory (DFT), to test and optimise multiple possible sites, accounting for the effect that the added muon has on its surroundings. However, this can be computationally expensive and sometimes unnecessary. Hence, in this work, we present a software implementation of the Unperturbed Electrostatic Potential (UEP) Method: an approach used for finding the muon stopping site in crystalline materials. The UEP method requires only one DFT calculation, necessary to compute the electronic density. This, in turn, is used to calculate the minima of the crystalline material’s electrostatic potential and the estimates of the muon stopping site, relying on the approximation that the muon’s presence does not significantly affect its surroundings. One of the main UEP’s assumptions is that the muon stopping site will be one of the crystalline material’s electrostatic potential minima. In this regard, we also propose some symmetry-based considerations about the properties of this crystalline material’s electrostatic potential, in particular, which sites are more likely to be its minima and why the unperturbed approximation may be sufficiently robust for them. We introduce the Python software package pymuon-suite and the various utilities it provides to facilitate these calculations, and finally, we demonstrate the effectiveness of the method with some chosen example systems. } - } - + 10.1063/5.0012381