Beauty beyond the Eye: Color Centers in Diamond Particles for Imaging and Quantum Sensing Applications
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Zaitsev, A.M., Optical electronic transitions, in Optical Properties of Diamond: A Data Handbook, Heidelberg: Springer, 2001, p. 125.
Barry, J.F., Schloss, J.M., Bauch, E., Turner, M.J., Hart, C.A., Pham, L.M., and Walsworth, R.L., Rev. Mod. Phys., 2020, vol. 92, no. 1, p. 015004.
Rembold, P., Oshnik, N., Müller, M.M., Montangero, S., Calarco, T., and Neu, E., AVS Quantum Sci., 2020, vol. 2, no. 2, p. 024701.
Shenderova, O.A., Shames, A.I., Nunn, N.A., Torelli, M.D., Vlasov, I., and Zaitsev, A., J. Vac. Sci. Technol. B, 2019, vol. 37, no. 3, p. 030802.
Lv, X., Walton, J.H., Druga, E., Wang, F., Aguilar, A., McKnelly, T., Nazaryan, R., Liu, F.L., Wu, L., Shenderova, O., Vigneron, D.B., Meriles, C.A., Reimer, J.A., Pines, A., and Ajoy, A., Proc. Natl. Acad. Sci. U. S. A., 2021, vol. 118, no. 21, p. e2023579118.
Ashfold, M.N.R., Goss, J.P., Green, B.L., May, P.W., Newton, M.E., and Peaker, C.V., Chem. Rev., 2020, vol. 120, no. 12, p. 5745.
Olson, D.W., Min. Eng., 2020, vol. 72, no. 7, p. 58.
Szunerits, S. and Boukherroub, R., Functionalization of diamond surfaces for medical applications, in Diamond-Based Materials for Biomedical Applications, Narayan, R., Ed., New York: Woodhead, 2013, p. 25.
Boudou, J.-P., Curmi, P.A., Jelezko, F., Wrachtrup, J., Aubert, P., Sennour, M., Balasubramanian, G., Reuter, R., Thorel, A., and Gaffet, E., Nanotechnology, 2009, vol. 20, no. 23, p. 235602.
Yu, S.J., Kang, M.W., Chang, H.C., Chen, K.M., and Yu, Y.C., J. Am. Chem. Soc., 2005, vol. 127, no. 50, p. 17604.
Chang, Y.R., Lee, H.Y., Chen, K., Chang, C.C., Tsai, D.S., Fu, C.C., Lim, T.S., Tzeng, Y.K., Fang, C.Y., Han, C.C., Chang, H.C., and Fann, W., Nat. Nanotechnol., 2008, vol. 3, no. 5, p. 284.
Wee, T.-L., Mau, Y.-W., Fang, C.-Y., Hsu, H.-L., Han, C.-C., and Chang, H.-C., Diamond Relat. Mater., 2009, vol. 18, no. 2, p. 5896.
Shames, A.I., Dalis, A., Greentree, A.D., Gibson, B.C., Abe, H., Ohshima, T., Shenderova, O., Zaitsev, A., and Reineck, P., Adv. Opt. Mater., 2020, vol. 8, no. 23, p. 2001047.
Gerstenhaber, J.A., Marcinkiewicz, C., Barone, F.C., Sternberg, M., D’Andrea, M.R., Lelkes, P.I., and Feuerstein, G.Z., Int. J. Nanomed., 2019, vol. 14, p. 6451.
Abdullahi, I.M., Langenderfer, M., Shenderova, O., Nunn, N., Torelli, M.D., Johnson, C.E., and Mochalin, V.N., Carbon, 2020, vol. 164, p. 442.
Torelli, M.D., Rickard, A.G., Backer, M.V., Filonov, D.S., Nunn, N.A., Kinev, A.V., Backer, J.M., Palmer, G.M., and Shenderova, O.A., Bioconjugate Chem., 2019, vol. 30, no. 3, p. 604.
Reineck, P., Francis, A., Orth, A., Lau, D.W.M., Nixon-Luke, R.D.V., Rastogi, I.D., Razali, W.A.W., Cordina, N.M., Parker, L.M., Sreenivasan, V.K.A., Brown, L.J., and Gibson, B.C., Adv. Opt. Mater., 2016, vol. 4, no. 10, p. 1549.
Toyli, D.M., Christle, D.J., Alkauskas, A., Buckley, B.B., Van de Walle, C.G., and Awschalom, D.D., Phys. Rev. X, 2012, vol. 2, no. 3, p. 031001.
Toyli, D.M., de las Casas, C.F., Christle, D.J., Dobrovitski, V.V., and Awschalom, D.D., Proc. Natl. Acad. Sci. U. S. A., 2013, vol. 110, no. 21, p. 8417.
Plakhotnik, T., Doherty, M.W., Cole, J.H., Chapman, R., Manson, N.B., Nano Lett., 2014, vol. 14, no. 9, p. 4989.
Doherty, M.W., Struzhkin, V.V., Simpson, D.A., McGuinness, L.P., Meng, Y., Stacey, A., Karle, T.J., Hemley, R.J., Manson, N.B., Hollenberg, L.C.L., and Prawer, S., Phys. Rev. Lett., 2014, vol. 112, no. 4, p. 047601.
Ivády, V., Simon, T., Maze, J.R., Abrikosov, I.A., and Gali, A., Phys. Rev. B, 2014, vol. 90, no. 23, p. 235205.
Hsieh, S., Bhattacharyya, P., Zu, C., Mittiga, T., Smart, T.J., Machado, F., Kobrin, B., Höhn, T.O., Rui, N.Z., Kamrani, M., Chatterjee, S., Choi, S., Zaletel, M., Struzhkin, V.V., Moore, J.E., Levitas, V.I., Jeanloz, R., and Yao, N.Y., Science, 2019, vol. 366, no. 6471, p. 1349.
Crane, M.J., Smith, B.E., Meisenheimer, P.B., Zhou, X., Stroud, R.M., James Davis, E., and Pauzauskie, P.J., Diamond Relat. Mater., 2018, vol. 87, p. 134.
Schrand, A.M., Hens, S.A.C., Shenderova, O.A., Crit. Rev. Solid State Mater. Sci., 2009, vol. 34, nos. 1–2, p. 18.
Moore, L., Yang, J., Lan, T.T., Osawa, E., Lee, D.K., Johnson, W.D., Xi, J., Chow, E.K., and Ho, D., ACS Nano, 2016, vol. 10, no. 8, p. 7385.
Vaijayanthimala, V., Lee, D.K., Kim, S.V., Yen, A., Tsai, N., Ho, D., Chang, H.C., and Shenderova, O., Expert Opin. Drug Delivery, 2015, vol. 12, no. 5, p. 735.
Barone, F.C., Marcinkiewicz, C., Li, J., Sternberg, M., Lelkes, P.I., Dikin, D.A., Bergold, P.J., Gerstenhaber, J.A., and Feuerstein, G., Int. J. Nanomed., 2018, vol. 13, p. 5449.
Müller, J., Huaux, F., Moreau, N., Misson, P., Heilier, J.F., Delos, M., Arras, M., Fonseca, A., Nagy, J.B., and Lison, D., Toxicol. Appl. Pharmacol., 2005, vol. 207, no. 3, p. 221.
Rehor, I., Mackova, H., Filippov, S.K., Kucka, J., Proks, V., Slegerova, J., Turner, S., van Tendeloo, G., Ledvina, M., Hruby, M., and Cigler, P., ChemPlusChem, 2014, vol. 79, no. 1, p. 21.
Gaillard, C., Girard, H.A., Falck, C., Paget, V., Simic, V., Ugolin, N., Bergonzo, P., Chevillard, S., and Arnault, J.C., RSC Adv., 2014, vol. 4, no. 7, p. 3566.
Firestein, R., Marcinkiewicz, C., Nie, L., Chua, H., Velazquez, Q.I., Torelli, M., Sternberg, M., Gligorijevic, B., Shenderova, O., Schirhagl, R., and Feuerstein, G.Z., Nanotechnol., Sci. Appl., 2021, vol. 14, p. 139.
Suarez-Kelly, L.P., Sun, S.H., Ren, C., Rampersaud, I.V., Albertson, D., Duggan, M.C., Noel, T.C., Courtney, N., Buteyn, N.J., Moritz, C., Yu, L., Yildiz, V.O., Butchar, J.P., Tridandapani, S., Rampersaud, A.A., and Carson, W.E., 3rd, ACS Appl. Nano. Mater., 2021, vol. 4, no. 3, p. 3122.
Chang, B.-M., Lin, H.-H., Su, L.-J., Lin, W.-D., Lin, R.-J., Tzeng, Y.-K., Lee, R.T., Lee, Y.C., Yu, A.L., and Chang, H.-C., Adv. Funct. Mater., 2013, vol. 23, no. 46, p. 5737.
Romanova, E.E., Akiel, R., Cho, F.H., and Takahashi, S., J. Phys. Chem. A, 2013, vol. 117, no. 46, p. 11933.
Barton, J., Gulka, M., Tarabek, J., Mindarava, Y., Wang, Z., Schimer, J., Raabova, H., Bednar, J., Plenio, M.B., Jelezko, F., Nesladek, M., and Cigler, P., ACS Nano, 2020, vol. 14, no. 10, p. 12938.
Rehor, I., Slegerova, J., Kucka, J., Proks, V., Petrakova, V., Adam, M.-P., Treussart, F., Turner, S., Bals, S., Sacha, P., Ledvina, M., Wen, A.M., Steinmetz, N.F., and Cigler, P., Small, 2014, vol. 10, no. 6, p. 1106.
Prabhakar, N., Näreoja, T., von Haartman, E., Karaman, D.Ş., Jiang, H., Koho, S., Dolenko, T.A., Hänninen, P.E., Vlasov, D.I., Ralchenko, V.G., Hosomi, S., Vlasov, I.I., Sahlgren, C., and Rosenholm, J.M., Nanoscale, 2013, vol. 5, no. 9, p. 3713.
Bumb, A., Sarkar, S.K., Billington, N., Brechbiel, M.W., and Neuman, K.C., J. Am. Chem. Soc., 2013, vol. 135, no. 21, p. 7815.
Jung, H.-S., Cho, K.-J., Seol, Y., Takagi, Y., Dittmore, A., Roche, P.A., and Neuman, K.C., Adv. Funct. Mater., 2018, vol. 28, no. 33, p. 1801252.
Zhao, L., Nakae, Y., Qin, H., Ito, T., Kimura, T., Kojima, H., Chan, L., and Komatsu, N., Beilstein J. Org. Chem., 2014, vol. 10, p. 707.
Zhao, L., Takimoto, T., Ito, M., Kitagawa, N., Kimura, T., and Komatsu, N., Angew. Chem., Int. Ed., 2011, vol. 50, no. 6, p. 1388.
Wang, W., Zou, Y., López-Moreno, A., Jiang, Y., Wen, F., Wang, H.-X., and Komatsu, N., ChemNanoMat, 2020, vol. 6, no. 9, p. 1332.
Reina, G., Zhao, L., Bianco, A., and Komatsu, N., Angew. Chem., Int. Ed., 2019, vol. 58, no. 50, p. 17918.
Neburkova, J., Vavra, J., Raabova, H., Pramanik, G., Havlik, J., and Cigler, P., Nanodiamonds embedded in shells, in Nanodiamonds, Arnault, J.-C., Ed., Amsterdam: Elsevier, 2017, p. 339.
Yi, J., Manna, A., Barr, V.A., Hong, J., Neuman, K.C., and Samelson, L.E., Mol. Biol. Cell, 2016, vol. 27, no. 22, p. 3591.
van der Laan, K.J., Naulleau, J., Damle, V.G., Sigaeva, A., Jamot, N., Perona-Martinez, F.P., Chipaux, M., and Schirhagl, R., Anal. Chem., 2018, vol. 90, no. 22, p. 13506.
Bradac, C., Gaebel, T., Naidoo, N., Sellars, M.J., Twamley, J., Brown, L.J., Barnard, A.S., Plakhotnik, T., Zvyagin, A.V., and Rabeau, J.R., Nat. Nanotechnol., 2010, vol. 5, no. 5, p. 345.
Doherty, M.W., Manson, N.B., Delaney, P., Jelezko, F., Wrachtrup, J., and Hollenberg, L.C.L., Phys. Rep., 2013, vol. 528, no. 1, p. 1.
Doherty, M.W., Manson, N.B., Delaney, P., and Hollenberg, L.C.L., New J. Phys., 2011, vol. 13, no. 2, p. 025019.
Ivády, V., Zheng, H., Wickenbrock, A., Bougas, L., Chatzidrosos, G., Nakamura, K., Sumiya, H., Ohshima, T., Isoya, J., Budker, D., Abrikosov, I.A., and Gali, A., Phys. Rev. B, 2021, vol. 103, no. 3, p. 035307.
Acosta, V.M., Jarmola, A., Bauch, E., and Budker, D., Phys. Rev. B, 2010, vol. 82, no. 20, p. 201202.
Robledo, L., Bernien, H., Sar, T.V.D., and Hanson, R., New J. Phys., 2011, vol. 13, no. 2, p. 025013.
Tisler, J., Balasubramanian, G., Naydenov, B., Kolesov, R., Grotz, B., Reuter, R., Boudou, J.-P., Curmi, P.A., Sennour, M., Thorel, A., Börsch, M., Aulenbacher, K., Erdmann, R., Hemmer, P.R., Jelezko, F., and Wrachtrup, J., ACS Nano, 2009, vol. 3, no. 7, p. 1959.
Tetienne, J.P., Rondin, L., Spinicelli, P., Chipaux, M., Debuisschert, T., Roch, J.F., Jacques, V., New J. Phys., 2012, vol. 14, no. 10, p. 103033.
Steinert, S., Ziem, F., Hall, L.T., Zappe, A., Schweikert, M., Götz, N., Aird, A., Balasubramanian, G., Hollenberg, L., and Wrachtrup, J., Nat. Commun., 2013, vol. 4, no. 1, p. 1607.
Tetienne, J.P., Hingant, T., Rondin, L., Cavaillès, A., Mayer, L., Dantelle, G., Gacoin, T., Wrachtrup, J., Roch, J.F., and Jacques, V., Phys. Rev. B, 2013, vol. 87, no. 23, p. 235436.
Nie, L., Nusantara, A.C., Damle, V.G., Sharmin, R., Evans, E.P.P., Hemelaar, S.R., van der Laan, K.J., Li, R., Perona Martinez, F.P., Vedelaar, T., Chipaux, M., and Schirhagl, R., Sci. Adv., 2021, vol. 7, no. 21. https://doi.org/10.1126/sciadv.abf0573
Morita, A., Nusantara, A.C., Perona Martinez, F.P., Hamoh, T., Damle, V.G., van der Laan, K.J., Sigaeva, A., Vedelaar, T., Chang, M., Chipaux, M., and Schirhagl, R., arXiv:2007.16130, 2020. https://ui.adsabs.harvard.edu/abs/2020arXiv200716130M. Accessed July 01, 2020.
Lilly Thankamony, A.S., Wittmann, J.J., Kaushik, M., and Corzilius, B., Prog. Nucl. Magn. Reson. Spectrosc., 2017, vols. 102–103, p. 120.
Kovtunov, K.V., Koptyug, I.V., Fekete, M., Duckett, S.B., Theis, T., Joalland, B., and Chekmenev, E.Y., Angew. Chem., Int. Ed., 2020, vol. 59, no. 41, p. 17788.
Barskiy, D.A., Coffey, A.M., Nikolaou, P., Mikhaylov, D.M., Goodson, B.M., Branca, R.T., Lu, G.J., Shapiro, M.G., Telkki, V.-V., Zhivonitko, V.V., Koptyug, I.V., Salnikov, O.G., Kovtunov, K.V., Bukhtiyarov, V.I., Rosen, M.S., Barlow, M.J., Safavi, S., Hall, I.P., Schröder, L., and Chekmenev, E.Y., Chem.—Eur. J., 2017, vol. 23, no. 4, p. 725.
Ajoy, A., Liu, K., Nazaryan, R., Lv, X., Zangara, P.R., Safvati, B., Wang, G., Arnold, D., Li, G., Lin, A., Raghavan, P., Druga, E., Dhomkar, S., Pagliero, D., Reimer, J.A., Suter, D., Meriles, C.A., and Pines, A., Sci. Adv., 2018, vol. 4, no. 5, p. eaar5492.
Ajoy, A., Nazaryan, R., Liu, K., Lv, X., Safvati, B., Wang, G., Druga, E., Reimer, J.A., Suter, D., Ramanathan, C., Meriles, C.A., and Pines, A., Proc. Natl. Acad. Sci. U. S. A., 2018, vol. 115, no. 42, p. 10576.
Zangara, P.R., Dhomkar, S., Ajoy, A., Liu, K., Nazaryan, R., Pagliero, D., Suter, D., Reimer, J.A., Pines, A., and Meriles, C.A., Proc. Natl. Acad. Sci. U. S. A., 2019, vol. 116, no. 7, p. 2512.
Henshaw, J., Pagliero, D., Zangara, P.R., Franzoni, M.B., Ajoy, A., Acosta, R.H., Reimer, J.A., Pines, A., and Meriles, C.A., Proc. Natl. Acad. Sci. U. S. A., 2019, vol. 116, no. 37, p. 18334.
Ajoy, A., Safvati, B., Nazaryan, R., Oon, J.T., Han, B., Raghavan, P., Nirodi, R., Aguilar, A., Liu, K., Cai, X., Lv, X., Druga, E., Ramanathan, C., Reimer, J.A., Meriles, C.A., Suter, D., and Pines, A., Nat. Commun., 2019, vol. 10, no. 1, p. 5160.
Fernández-Acebal, P., Rosolio, O., Scheuer, J., Müller, C., Müller, S., Schmitt, S., McGuinness, L.P., Schwarz, I., Chen, Q., Retzker, A., Naydenov, B., Jelezko, F., and Plenio, M.B., Nano Lett., 2018, vol. 18, no. 3, p. 1882.
Naydenov, B., Reinhard, F., Lämmle, A., Richter, V., Kalish, R., D’Haenens-Johansson, U.F.S., Newton, M., Jelezko, F., and Wrachtrup, J., Appl. Phys. Lett., 2010, vol. 97, no. 24, p. 242511.
Yamamoto, T., Umeda, T., Watanabe, K., Onoda, S., Markham, M.L., Twitchen, D.J., Naydenov, B., McGuinness, L.P., Teraji, T., Koizumi, S., Dolde, F., Fedder, H., Honert, J., Wrachtrup, J., Ohshima, T., Jelezko, F., and Isoya, J., Phys. Rev. B, 2013, vol. 88, no. 7, p. 075206.
Tetienne, J.P., de Gille, R.W., Broadway, D.A., Teraji, T., Lillie, S.E., McCoey, J.M., Dontschuk, N., Hall, L.T., Stacey, A., Simpson, D.A., and Hollenberg, L.C.L., Phys. Rev. B, 2018, vol. 97, no. 8, p. 085402.
Shames, A.I., Smirnov, A.I., Milikisiyants, S., Danilov, E.O., Nunn, N., McGuire, G., Torelli, M.D., and Shenderova, O., J. Phys. Chem. C, 2017, vol. 121, no. 40, p. 22335.
Dei Cas, L., Zeldin, S., Nunn, N., Torelli, M., Shames, A.I., Zaitsev, A.M., and Shenderova, O., Adv. Funct. Mater., 2019, vol. 29, no. 19, p. 1808362.
Gierth, M., Krespach, V., Shames, A.I., Raghavan, P., Druga, E., Nunn, N., Torelli, M., Nirodi, R., Le, S., Zhao, R., Aguilar, A., Lv, X., Shen, M., Meriles, C.A., Reimer, J.A., Zaitsev, A., Pines, A., Shenderova, O., and Ajoy, A., Adv. Quantum Technol., 2020, vol. 3, no. 10, p. 2000050.
Bernholc, J., Antonelli, A., Del Sole, T.M., Bar-Yam, Y., and Pantelides, S.T., Phys. Rev. Lett., 1988, vol. 61, no. 23, p. 2689.
Brenner, D.W., Shenderova, O.A., Harrison, J.A., Stuart, S.J., Ni, B., and Sinnott, S.B., J. Phys.: Condens. Matter, 2002, vol. 14, no. 4, p. 783.
Gruber, A., Dräbenstedt, A., Tietz, C., Fleury, L., Wrachtrup, J., and Borczyskowski, C.v., Science, 1997, vol. 276, no. 5321, p. 2012.
Beveratos, A., Kühn, S., Brouri, R., Gacoin, T., Poizat, J.P., and Grangier, P., Eur. Phys. J. D, 2002, vol. 18, no. 2, p. 191.
Treussart, F., Jacques, V., Wu, E., Gacoin, T., Grangier, P., and Roch, J.F., Phys. B (Amstaerdam, Neth.), 2006, vol. 376–377, p. 926.
Shenderova, O.A., Nunn, N.A., Torelli, M.D., McGuire, G.E., Shames, A.I., Zaitsev, A.M., Phys. B (Amstaerdam, Neth.), 2020, vol. 579, p. 411868.
Boudou, J.P., Tisler, J., Reuter, R., Thorel, A., Curmi, P.A., Jelezko, F., and Wrachtrup, J., Diamond Relat. Mater., 2013, vol. 37, p. 80.
Yokota, Y., Kotsuka, H., Sogi, T., Ma, J.S., Hiraki, A., Kawarada, H., Matsuda, K., and Hatada, M., Diamond Relat. Mater., 1992, vol. 1, no. 5, p. 470.
Huang, Z., Li, W.D., Santori, C., Acosta, V.M., Faraon, A., Ishikawa, T., Wu, W., Winston, D., Williams, R.S., and Beausoleil, R.G., Appl. Phys. Lett., 2013, vol. 103, no. 8, p. 081906.
Wee, T.-L., Tzeng, Y.-K., Han, C.-C., Chang, H.-C., Fann, W., Hsu, J.-H., Chen, K.-M., and Yu, Y.-C., J. Phys. Chem. A, 2007, vol. 111, no. 38, p. 9379.
Botsoa, J., Sauvage, T., Adam, M.P., Desgardin, P., Leoni, E., Courtois, B., Treussart, F., and Barthe, M.F., Phys. Rev. B 2011, vol. 84, no. 12, p. 125209.
Davies, G.I., Properties and Growth of Diamond, London: Inst. Electr. Eng., 1994.
Davies, G., Lawson, S.C., Collins, A.T., Mainwood, A., and Sharp, S.J., Phys. Rev. B, 1992, vol. 46, no. 20, p. 13157.
Alekseev, A.G., Amosov, V.N., Krasil’nikov, A.V., Tugarinov, S.N., Frunze, V.V., and Tsutskikh, A.Y., Tech. Phys. Lett., 2000, vol. 26, no. 6, p. 496.
Koga, K.T., Walter, M.J., Nakamura, E., and Kobayashi, K., Phys. Rev. B, 2005, vol. 72, no. 2, p. 024108.
Dobrinets, I.A., Vins, V.G., Zaitsev, A.M., HPHT-Induced transformations, in HPHT-Treated Diamonds: Diamonds Forever, Heidelberg: Springer, 2013, p. 39.
Torelli, M.D., Nunn, N.A., Jones, Z.R., Vedelaar, T., Padamati, S.K., Schirhagl, R., Hamers, R.J., Shames, A.I., Danilov, E.O., Zaitsev, A., and Shenderova, O.A., Front. Phys., 2020, vol. 8, no. 205. https://doi.org/10.3389/fphy.2020.00205
Shames, A.I., Osipov, V.Y., Bogdanov, K.V., Baranov, A.V., Zhukovskaya, M.V., Dalis, A., Vagarali, S.S., and Rampersaud, A., J. Phys. Chem. C, 2017, vol. 121, no. 9, p. 5232.
Wang, C., Kurtsiefer, C., Weinfurter, H., and Burchard, B., J. Phys. B, 2005, vol. 39, no. 1, p. 37.
Becker, J.N., Neu, E., in Semiconductors and Semimetals, Nebel, C.E., Aharonovich, I., Mizuochi, N., and Hatano, M., Eds., New York: Elsevier, 2020, vol. 103, p. 201.
Nguyen, C.T., Evans, R.E., Sipahigil, A., Bhaskar, M.K., Sukachev, D.D., Agafonov, V.N., Davydov, V.A., Kulikova, L.F., Jelezko, F., and Lukin, M.D., Appl. Phys. Lett., 2018, vol. 112, no. 20, p. 203102.
Ekimov, E.A., Lyapin, S.G., Boldyrev, K.N., Kondrin, M.V., Khmelnitskiy, R., Gavva, V.A., Kotereva, T.V., and Popova, M.N., JETP Lett., 2015, vol. 102, no. 11, p. 701.
Nadolinny, V.A., Komarovskikh, A.Y., Palyanov, Y.N., Kupriyanov, I.N., Borzdov, Y.M., Rakhmanova, M.I., Yuryeva, O.P., and Veber, S.L., J. Struct. Chem., 2016, vol. 57, no. 5, p. 1041.
Fan, J.-W., Cojocaru, I., Becker, J., Fedotov, I.V., Alkahtani, M.H.A., Alajlan, A., Blakley, S., Rezaee, M., Lyamkina, A., Palyanov, Y.N., Borzdov, Y.M., Yang, Y.-P., Zheltikov, A., Hemmer, P., and Akimov, A.V., ACS Photonics, 2018, vol. 5, no. 3, p. 765.
Blakley, S., Liu, X., Fedotov, I., Cojocaru, I., Vincent, C., Alkahtani, M., Becker, J., Kieschnick, M., Lühman, T., Meijer, J., Hemmer, P., Akimov, A., Scully, M., and Zheltikov, A., ACS Photonics, 2019, vol. 6, no. 7, p. 1690.
Miller, C., Puust, L., Ekimov, E., Vlasov, I., Vanetsev, A., Vinogradova, E., Orlovskii, Y., Treshchalov, A., and Sildos, I., Phys. Status Solidi A, 2020, vol. 218, no. 5, p. 2000217.
Iwasaki, T., Miyamoto, Y., Taniguchi, T., Siyushev, P., Metsch, M.H., Jelezko, F., and Hatano, M., Phys. Rev. Lett., 2017, vol. 119, no. 25, p. 253601.
Alkahtani, M., Cojocaru, I., Liu, X., Herzig, T., Meijer, J., Küpper, J., Lühmann, T., Akimov, A.V., and Hemmer, P.R., Appl. Phys. Lett., 2018, vol. 112, no. 24, p. 241902.
Bradac, C., Gao, W., Forneris, J., Trusheim, M.E., Aharonovich, I., Nat. Commun., 2019, vol. 10, no. 1, p. 5625.
Zhang, T., Pramanik, G., Zhang, K., Gulka, M., Wang, L., Jing, J., Xu, F., Li, Z., Wei, Q., Cigler, P., and Chu, Z., ACS Sens., 2021, vol. 6, no. 6, p. 2077.
Perona Martínez, F., Nusantara, A.C., Chipaux, M., Padamati, S.K., and Schirhagl, R., ACS Sens., 2020, vol. 5, no. 12, p. 3862.
Nie, L., Nusantara, A.C., Damle, V.G., Sharmin, R., Evans, E.P.P., Hemelaar, S.R., van der Laan, K.J., Li, R., Perona Martinez, F.P., Vedelaar, T., Chipaux, M., and Schirhagl, R., Sci. Adv., 2021, vol. 7, no. 21. https://doi.org/10.1126/sciadv.abf0573
Nishimura, Y., Oshimi, K., Umehara, Y., Kumon, Y., Miyaji, K., Yukawa, H., Shikano, Y., Matsubara, T., Fujiwara, M., and Baba, Y., Sci. Rep., 2021, vol. 11, no. 1, p. 4248.
Pedroza-Montero, F., Santacruz-Gómez, K., Acosta-Elías, M., Silva-Campa, E., Meza-Figueroa, D., Soto-Puebla, D., Castaneda, B., Urrutia-Bañuelos, E., Álvarez-Bajo, O., Navarro-and Espinoza, S., Appl. Sci., 2021, vol. 11, no. 9, p. 4065. https://doi.org/10.3390/app11094065
Fujiwara, M., Sun, S., Dohms, A., Nishimura, Y., Suto, K., Takezawa, Y., Oshimi, K., Zhao, L., Sadzak, N., and Umehara, Y., Sci. Adv., 2020, vol. 6, no. 37.
Holzgrafe, J., Gu, Q., Beitner, J., Kara, D.M., Knowles, H.S., and Atatüre, M., Phys. Rev. Appl., 2020, vol. 13, no. 4, 044004.
Bucher, D.B., Glenn, D.R., Park, H., Lukin, M.D., and Walsworth, R.L., Phys. Rev. X, 2020, vol. 10, no. 2, p. 021053.
Sigaeva, A., Morita, A., Hemelaar, S.R., and Schirhagl, R., Nanoscale, 2019, vol. 11, no. 37, p. 17357.
Jarre, G., Heyer, S., Memmel, E., Meinhardt, T., and Krueger, A., Beilstein J. Org. Chem., 2014, vol. 10, p. 2729.
Shenderova, O., Nunn, N., Oeckinghaus, T., Torelli, M., McGuire, G., Smith, K., Danilov, E., Reuter, R., Wrachtrup, J., Shames, A., Filonova, D., and Kinev, A., SPIE OPTO, San Francisco, 2017, p 16.
Zhang, X.-Q., Chen, M., Lam, R., Xu, X., Osawa, E., and Ho, D., ACS Nano, 2009, vol. 3, no. 9, p. 2609.
Creusat, G., Rinaldi, A.-S., Weiss, E., Elbaghdadi, R., Remy, J.-S., Mulherkar, R., and Zuber, G., Bioconjugate Chem., 2010, vol. 21, no. 5, p. 994.
Vavra, J., Rehor, I., Rendler, T., Jani, M., Bednar, J., Baksh, M.M., Zappe, A., Wrachtrup, J., and Cigler, P., Adv. Funct. Mater., 2018, vol. 28, no. 45, 1803406.
Chu, Z., Miu, K., Lung, P., Zhang, S., Zhao, S., Chang, H.-C., Lin, G., and Li, Q., Sci. Rep., 2015, vol. 5, p. 11661.
Chan, M.S., Liu, L.S., Leung, H.M., and Lo, P.K., ACS App. Mater. Interfaces, 2017, vol. 9, no. 13, p. 11780.
Cheng, Y., Liu, D.-Z., Zhang, C.-X., Cui, H., Liu, M., Mei, Q.-B., Lu, Z.-F., and Zhou, S.-Y., Nanomed.: Nanotechnol., Biol. Med., 2019, vol. 16, p. 236.
Mkandawire, M., Pohl, A., Gubarevich, T., Lapina, V., Appelhans, D., Rödel, G., Pompe, W., Schreiber, J., and Opitz, J., J. Biophotonics, 2009, vol. 2, no. 10, p. 596.
Morita, A., Hamoh, T., Sigaeva, A., Norouzi, N., Nagl, A., van der Laan, K.J., Evans, E.P., and Schirhagl, R., Nanomaterials, 2020, vol. 10, no. 10, p. 1962.
Nunn, N., Prabhakar, N., Reineck, P., Magidson, V., Kamiya, E., Heinz, W.F., Torelli, M.D., Rosenholm, J., Zaitsev, A., and Shenderova, O., Nanoscale, 2019, vol. 11, p. 11584.
Comley, J., Drug Discovery World, 2011, p. 58.
Yoon, S., Kim, M., Jang, M., Choi, Y., Choi, W., Kang, S., and Choi, W., Nat. Rev. Phys., 2020, vol. 2, no. 3, p. 141.
Tuszynski, M.H., Wang, Y., Graham, L., McHale, K., Gao, M., Wu, D., Brock, J., Blesch, A., Rosenzweig, E.S., and Havton, L.A., Exp. Neurol., 2014, vol. 261, p. 494.
Hidalgo, M., Amant, F., Biankin, A.V., Budinská, E., Byrne, A.T., Caldas, C., Clarke, R.B., de Jong, S., Jonkers, J., and Mælandsmo, G.M., Cancer Discovery, 2014, vol. 4, no. 9, p. 998.
