Structural Changes of a Type of Polydiacetylene Single Crystal Obtained via Physical Vapor Transport Technique Induced by UV Irradiation

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The structural changes of a type of polydiacetylene single crystal obtained via the physical vapor transport technique induced by the formation of polymeric backbone chains upon ultraviolet irradiation are discussed in this paper. On the basis of the results of X-ray diffractometry, X-ray topography, and atomic force microscopy, the structural changes were confirmed to be due to the formation of backbone chains along the basal (010) plane. The high periodicity between equivalent (010) planes is maintained regardless of the formation of backbone chains. The observation of the surface morphology on the basal (010) plane revealed that many polymeric bundles were formed in both the [001] and [101] directions.

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85-90

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May 2026

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[1] R. A. Laudise, Ch. Kloc, P. G. Simpkins, and T. Siegrist: J. Cryst. Growth Vol. 187 (1998), p.449.

Google Scholar

[2] Ch. Kloc, P. G. Simpkins, T. Siegrist, and R. A. Laudise: J. Cryst. Growth Vol. 182 (1997), p.416.

Google Scholar

[3] S. Jo, K. Kajiwara, and M. Takenaga: Jpn. J. Appl. Phys. Vol. 53 (2014), p.115506.

Google Scholar

[4] S. Jo, K. Kajiwara, and H. Yoshikawa: Mater. Sci. Forum Vol. ?? (2025), in press.

Google Scholar

[5] S. Jo, N. Takada, and M. Takenaga: Jpn. J. Appl. Phys. Vol. 50 (2011), p.065501.

Google Scholar

[6] S. Jo, N. Takada, and M. Takenaga: J. Phys. Soc. Jpn. Vol. 82 (2013), p.135001.

Google Scholar

[7] S. Jo and M. Takenaga: J. Phys. Conf. Ser. Vol. 258 (2010), p.0120171.

Google Scholar

[8] S. Jo, H. Yoshikawa, A. Fujii, and M. Takenaga: Surf. Sci. Vol. 592 (2005), p.37.

Google Scholar

[9] S. Jo, H. Yoshikawa, A. Fujii, and M. Takenaga: Synth. Met. Vol. 150 (2005), p.223.

Google Scholar

[10] S. Jo, K. Okamoto, and M. Takenaga: Appl. Surf. Sci. Vol. 256 (2010), p.1969.

Google Scholar

[11] S. Jo, H. Yoshikawa, A. Fujii, and M. Takenaga: Appl. Surf. Sci. Vol.252 (2006), p.7383.

Google Scholar

[12] S. Jo, S. Suzuki, and M. Yoshimura: Thin Solid Films Vol. 554 (2014), p.154.

Google Scholar

[13] S. Hussain, R. Deb, S. Suklabaidya, D. Bhattacharjee, and S. A. Hussain: Mater. Today Vol. 65 (2022), p.2765.

Google Scholar

[14] L. Jiang, J. Luo, W. Dong, C. Wang, W. Jin, Y. Xia, H. Wang, H. Ding, L. Jiang, and H. He: J.Virol. Methods Vol. 219 (2015), p.38.

Google Scholar

[15] C. D. Prainito, G. Eshun, F. J. Osonga, D. Isika, C. Centeno, and O. A. Sadik: Biosens. Vol. 12 (2022), p.804.

DOI: 10.3390/bios12100804

Google Scholar

[16] Y. K. Jung and H. G. Park: Biosens. Bioelectron. Vol. 72 (2015), p.127.

Google Scholar

[17] M. Valdez, S. K. Gupta, K. Lozano, Y. Mao: Sens. Actuators B: Chem. Vol. 297 (2019), p.126734.

Google Scholar

[18] T. Yaji, K. Izumi, and S. Isoda: Appl. Surf. Sci. Vol. 188 (2002), p.519.

Google Scholar

[19] K. Izumi, M. Kondo, M. Matsushita, and A. Ishizawa: in "Defect Control in Semiconductors" ed. K. Sumino, Elsevier Science Publishers B. V. (North Holland), (1990), 1653.

DOI: 10.1016/b978-0-444-88429-9.50108-7

Google Scholar

[20] K. Izumi, K. Oyama, and H. Miyaji: Bull. Inst. Res. Kyoto Univ. Vol. 69 (1991), p.184.

Google Scholar

[21] E. Hadicke, K. Penzien, and H. W. Schnell: Angew. Chem. Int. Ed. Vol. 10 (1971), p.940.

Google Scholar

[22] R. H. Baughman and K. C. Yee: J. Polym. Sci., Part B: Polym. Phys. Vol. 12 (1974), p.1511.

Google Scholar