Large experimental programmes in the fields of nuclear and particle physics search for evidence of physics beyond that explained by current theories. The observation of the Higgs boson completed the set of particles predicted by the standard model, which currently provides the best description of fundamental particles and forces. However, this theory’s limitations include a failure to predict fundamental parameters, such as the mass of the Higgs boson, and the inability to account for dark matter and energy, gravity, and the matter–antimatter asymmetry in the Universe, among other phenomena. Furthermore, these limitations have inspired searches for physics beyond the standard model in the post-Higgs era through the direct production of additional particles at high-energy accelerators, which have so far been unsuccessful.
Androic, D.. "Precision measurement of the weak charge of the proton." Nature (London), vol. 557, no. 7704, May. 2018. https://doi.org/10.1038/s41586-018-0096-0
@article{osti_1438370,
author = {Androic, D.},
title = {Precision measurement of the weak charge of the proton},
annote = {Large experimental programmes in the fields of nuclear and particle physics search for evidence of physics beyond that explained by current theories. The observation of the Higgs boson completed the set of particles predicted by the standard model, which currently provides the best description of fundamental particles and forces. However, this theory’s limitations include a failure to predict fundamental parameters, such as the mass of the Higgs boson, and the inability to account for dark matter and energy, gravity, and the matter–antimatter asymmetry in the Universe, among other phenomena. Furthermore, these limitations have inspired searches for physics beyond the standard model in the post-Higgs era through the direct production of additional particles at high-energy accelerators, which have so far been unsuccessful.},
doi = {10.1038/s41586-018-0096-0},
url = {https://www.osti.gov/biblio/1438370},
journal = {Nature (London)},
issn = {ISSN 0028-0836},
number = {7704},
volume = {557},
place = {United States},
publisher = {Nature Publishing Group},
year = {2018},
month = {05}}
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