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Their integration in complex devices is still in its infancy and has been\u00a0mostly focused on light extraction and guiding. Here the control of the electronic states of carbon\u2010related impurities (G\u2010centers) is addressed via strain engineering. By embedding them in patches of silicon on insulator and topping them with SiN, symmetry breaking along [001] and [110] directions is demonstrated, resulting in a controlled splitting of the zero phonon line (ZPL), as accounted for by the piezospectroscopic theoretical framework. The splitting can be as large as 18\u00a0meV, and it is finely tuned by selecting patch size or by moving in different positions on the patch. Some of the split, strained ZPLs are almost fully polarized, and their overall intensity is enhanced up to 7 times with respect to the flat areas, whereas their recombination dynamics is slightly affected accounting for the lack of Purcell effect. This\u00a0technique can be extended to other impurities and Si\u2010based devices such as suspended bridges, photonic crystal microcavities, Mie resonators, and integrated photonic\u00a0circuits.<\/jats:p>","DOI":"10.1002\/adom.202301608","type":"journal-article","created":{"date-parts":[[2023,9,1]],"date-time":"2023-09-01T04:20:05Z","timestamp":1693542005000},"update-policy":"http:\/\/dx.doi.org\/10.1002\/crossmark_policy","source":"Crossref","is-referenced-by-count":0,"title":["Strain Engineering of the Electronic States of Silicon\u2010Based Quantum Emitters"],"prefix":"10.1002","author":[{"given":"Andrea","family":"Ristori","sequence":"first","affiliation":[{"name":"European Laboratory for Non\u2010Linear Spectroscopy (LENS) Via N. Carrara 1 Sesto Fiorentino (FI) I\u201050019 Italy"},{"name":"Department of Physics and Astronomy University of Florence Via G. 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