[1] Banimuslem, H., Hassan, A., Basova, T., & Gürek, A.G. 2015. Copper Phthalocyanine Functionalized Single-Walled Carbon Nanotubes: Thin Films for Optical Detection. Journal of Nanoscience and Nanotechnology, 15(3), pp.2157-2167.
[2] Banimuslem, H., Hassan, A., Basova, T., & Ahsen, V. 2014. Copper Phthalocyanine/SWCNT Hybrid Thin Films for Pentachlorophenol Detection. Sensors and Actuators B: Chemical, 190, pp.990-998.
[3] Tuncel, S., Kaya, E.N., Basova, T., Banimuslem, H., Hassan, A., Gürek, A.G., & Ahsen, V. 2014. Effect of Pyrene Substitution on the Formation and Sensor Properties of Phthalocyanine-Single-Walled Carbon Nanotube Hybrids. Sensors and Actuators B: Chemical, 199, pp.277-283.
[4] Banimuslem, H., Hassan, A., Basova, T., & Gülmez, A.D. 2014. Copper Phthalocyanine/Single-Walled Carbon Nanotubes Hybrid Thin Films for Pentachlorophenol Detection. Sensors Actuators B: Chemical, 190, pp.990-998.
[5] Wang, Y., Hu, N., Zhou, Z., Xu, D., Wang, Z., Yang, Z., Wei, H., Kong, E.S., & Zhang, Y. 2011. Single-Walled Carbon Nanotube/Cobalt Phthalocyanine Derivative Hybrid Material: Preparation, Characterization, and Its Gas Sensing Properties. Journal of Materials Chemistry, 21(8), pp.3779-3787.
[6] Tuncel, S., Basova, T., Hassan, A., & Gürek, A.G. 2012. Liquid Crystalline Octasubstituted Lead(II) Phthalocyanines: Effects of Alkoxy and Alkylthio Substituents on Film Alignment and Electrical Properties. New Journal of Chemistry, 36(7), pp.1665-1672.
[7] Basova, T., Jushina, I., Gürek, A.G., & Ahsen, V. 2009. Investigation of Gas-Sensing Properties of Copper Phthalocyanine Films. Materials Science and Engineering C, 29(6), pp.814-818.
[8] Wang, S. Y., Xu, J. H., Yang, W. Y., Chen, Y., & Yang, Y. J. 2013. Preparation and Gas Sensing Properties of 2, 9, 16, 23-Tetra-Tert-Butyl-29H, 31H-Copper (II) Phthalocyanine LB Thin Films. Advanced Materials Research, 622, pp.679-684.
[9] Belakhmima, R. A., Dkhireche, N., Touir, R., & Touhami, M. E. 2015. Development of a multi-component SG with CTAB as corrosion, scale, and microorganism inhibitor for cooling water systems. Materials Chemistry and Physics, 152, pp.85-94.
[10] Tan, Y., Zu, J., & Zhang, Z. 2015. Design and development of a miniature multi-degree-of-freedom in-plane motor using iron–gallium alloy. Sensors and Actuators A: Physical, 236, pp.140-149.
[11] McEvoy, T. M., Long, J. W., Smith, T. J., & Stevenson, K. J. 2006. Nanoscale conductivity mapping of hybrid nanoarchitectures: Ultrathin poly (o-phenylenediamine) on mesoporous manganese oxide ambigels. Langmuir, 22(10), pp.4462-4466.
[12] Jafari, M. J., Azim‐Araghi, M. E., Barhemat, S., & Riyazi, S. 2012. Effect of post‐deposition annealing on surface morphology and gas sensing properties of palladium phthalocyanine thin films. Surface and interface analysis, 44(5), pp.601-608.
[13] Li, J., Lu, Y., Ye, Q., Cinke, M., Han, J., & Meyyappan, M. 2003. Carbon nanotube sensors for gas and organic vapor detection. Nano letters, 3(7), pp.929-933.
[14] Aydın, M., Alıcı, E. H., Bilgicli, A. T., Yarasir, M. N., & Arabaci, G. 2017. Synthesis, characterization, aggregation, fluorescence and antioxidant properties of bearing (4-(methylthio) phenylthio) tetra substituted phthalocyanines. Inorganica Chimica Acta, 464, pp.1-10.
[15] Shamsipoor, A. S., Bagheri-Mohagheghi, M. M., & Mokaripoor, E. 2022. Structural, electrical and optical properties of SnO2: B transparent semiconducting thin films. Progress in Physics of Applied Materials, 2(1), pp.1-10.
[16] Peter, Y. U., & Cardona, M. (2010). Fundamentals of semiconductors: physics and materials properties. Springer Science & Business Media.
[17] Abbas, N. K., Abdulameer, A. F., Ali, R. M., & Alwash, S. M. 2019. The effect of heat treatment on optical properties of copper (II) phthalocyanine tetrasulfonic acid tetrasodium salt (CuPcTs) organic thin films. Silicon, 11(2), pp.843-855.
[18] Singh, A., Uddin, M. A., Sudarshan, T., & Koley, G. 2014. Tunable reverse‐biased graphene/silicon heterojunction schottky diode sensor. Small, 10(8), pp.1555-1565.
[19] Bube, R. 2012. Electronic properties of crystalline solids: an introduction to fundamentals. Elsevier.
[20] Matsumoto, N., Shima, H., Fujii, T., & Kannari, F. 1997. Organic electroluminescence cells based on thin films deposited by ultraviolet laser ablation. Applied physics letters, 71(17), pp.2469-2471.
[21] Bottari, G., de la Torre, G., Guldi, D. M., & Torres, T. 2010. Covalent and noncovalent phthalocyanine− carbon nanostructure systems: synthesis, photoinduced electron transfer, and application to molecular photovoltaics. Chemical reviews, 110(11), pp.6768-6816.
[22] El Nhass, M. M., Soliman, H. S., Metwally, H. S., Farid, A. M., Farag, A. A. M., & El Shazly, A. A. 2001. Optical properties of evaporated iron phthalocyanine (FePc) thin films. Journal of Optics, 30(3), pp.121-129.
[23] Pankove, J. I. 2012. Optical processes in semiconductors. Courier Corporation.
[24] Singh, Y. 2013. Electrical resistivity measurements: a review. In International journal of modern physics: Conference series (Vol. 22, pp. 745-756). World Scientific Publishing Company.
[25] Raïssi, M., Leroy-Lhez, S., & Ratier, B. 2016. Enhanced photocurrent and stability of organic solar cells using solution-based TS-CuPc interfacial layer. Organic Electronics, 37, pp.183-189.
[26] Rajesh, K. R., & Menon, C. S. 2005. Electrical and optical properties of vacuum deposited MnPc thin films. The European Physical Journal B-Condensed Matter and Complex Systems, 47(2), pp.171-176.
[27] Sánchez-Vergara, M. E., Guevara-Martínez, E., Arreola-Castillo, A., & Mendoza-Sevilla, A. 2019. Fabrication of hybrid membranes containing nylon-11 and organic semiconductor particles with potential applications in molecular electronics. Polymers, 12(1), p.9.
[28] Banimuslem, H. A. 2015. Organic/carbon nanotubes hybrid thin films for chemical detection. Sheffield Hallam University (United Kingdom).
[29] He, N., Chen, Y., Bai, J., Wang, J., Blau, W. J., & Zhu, J. 2009. Preparation and optical limiting properties of multiwalled carbon nanotubes with π-conjugated metal-free phthalocyanine moieties. The Journal of Physical Chemistry C, 113(30), pp.13029-13035.
[30] Matsumoto, S., Matsuhama, K., & Mizuguchi, J. 1999. β Metal-free phthalocyanine. Crystal Structure Communications, 55(1), pp.131-133.
[31] Serebrennikova, S. I., Kopylova, D. S., Gladush, Y. G., Krasnikov, D. V., Mailis, S., & Nasibulin, A. G. 2023. Photogating interfacial effects in carbon nanotube-based transistors on a Si/SiO 2 substrate toward highly sensitive photodetection. Nanoscale, 15(47), pp.19351-19358.
[32] Darwish, S., El Zawawi, I. K., & Riad, A. S. 2005. Photovoltaic properties of ZnSe/metal-free phthalocyanine heterojunctions deposited on substrates of InP single crystals. Thin Solid Films, 485(1-2), pp.182-187.
[33] Somani, P. R., & Radhakrishnan, S. J. M. C. 2003. Electrochromic materials and devices: present and future. Materials chemistry and physics, 77(1), pp.117-133.
[34] Schütze, A., Pieper, N., & Zacheja, J. 1995. Quantitative ozone measurement using a phthalocyanine thin-film sensor and dynamic signal evaluation. Sensors and Actuators B: Chemical, 23(2-3), pp.215-217.
[35] He, N., Chen, Y., Bai, J., Wang, J., Blau, W. J., & Zhu, J. 2009. Preparation and optical limiting properties of multiwalled carbon nanotubes with π-conjugated metal-free phthalocyanine moieties. The Journal of Physical Chemistry C, 113(30), pp.13029-13035.
[36] Niazov‐Elkan, A., Weissman, H., Dutta, S., Cohen, S. R., Iron, M. A., Pinkas, I., ... & Rybtchinski, B. 2018. Self‐assembled hybrid materials based on organic nanocrystals and carbon nanotubes. Advanced Materials, 30(2), p.1705027.
[37] Kumar, A. K. S., Zhang, Y., Li, D., & Compton, R. G. 2020. A mini-review: How reliable is the drop casting technique?. Electrochemistry Communications, 121, p.106867.
[38] Karl, N. 2003. Charge carrier transport in organic semiconductors. Synthetic metals, 133, pp.649-657.
[39] Sze S.M., Ng K.K. 2006. Physics of Semiconductor Devices. Wiley, 3rd Edition.
[40] Bube, R. H. 1992. Photoelectronic properties of semiconductors. Cambridge University Press.
[41] Kymakis, E., & Amaratunga, G. A. J. 2002. Single-wall carbon nanotube/conjugated polymer photovoltaic devices. Applied Physics Letters, 80(1), pp.112-114.
[42] Lakowicz, J. R. (Ed.). 2006. Principles of fluorescence spectroscopy. Boston, MA: springer US.
[43] Knox, R. S. 1963. Theory of excitons, Acad. Press, NY.
[44] Qi, T., Yu, Y., Liu, J., Jia, Y., & Ding, D. (2022, August). Enhanced performance of single-walled carbon nanotube-germanium near-infrared photodetector by doping with Au nanoparticles. In Photonics (Vol. 9, No. 9, p. 615). MDPI.
[45] Sönmez, M., Berber, İ., & Akbaş, E. 2006. Synthesis, antibacterial and antifungal activity of some new pyridazinone metal complexes. European Journal of Medicinal Chemistry, 41(1), pp.101-105.
[46] Ban, K., Nishizawa, K., Ohta, K., van de Craats, A. M., Warman, J. M., Yamamoto, I., & Shirai, H. 2001. Discotic liquid crystals of transition metal complexes 29: Part 28: Ref. 1. mesomorphism and charge transport properties of alkylthio-substituted phthalocyanine rare-earth metal sandwich complexes Elemental analysis data, recrystallization solvents, yields and optical absorption spectral data for [(CnS) 8Pc] 2M are available as supplementary data. For direct electronic access see http://www. rsc. org/suppdata/jm/b0/b003984p. Journal of Materials Chemistry, 11(2), pp.321-331.
[47] Barranco, A., Borras, A., Gonzalez-Elipe, A. R., & Palmero, A. 2016. Perspectives on oblique angle deposition of thin films: From fundamentals to devices. Progress in Materials Science, 76, pp.59-153.
[48] Capista, D., Lozzi, L., Pelella, A., Di Bartolomeo, A., Giubileo, F., & Passacantando, M. 2023. Spatially resolved photo-response of a carbon nanotube/Si photodetector. Nanomaterials, 13(4), p.650.
[49] Hernández, A., Sánchez, J. G., Ortiz, J., Martinez-Ferrero, E., Palomares, E., & Sastre-Santos, Á. 2025. Tri-tert-butyl arylamine zinc phthalocyanine derivatives as p-type self-assembled molecules for efficient perovskite solar cells. Journal of Materials Chemistry C, 13(31), pp.15977-15987.
[50] Koshiba, Y., Sugimoto, I., Horike, S., Fukushima, T., & Ishida, K. 2023. Fabrication and local electrical characterization of p–n junction copper phthalocyanine nanorods. physica status solidi (a), 220(24), p.2300243.
[51] Zhang, Q., Li, M., Li, L., Geng, D., Chen, W., & Hu, W. 2024. Recent progress in emerging two-dimensional organic–inorganic van der Waals heterojunctions. Chemical Society Reviews, 53(6), pp.3096-3133.
[52] Stenzel, O. 2005. The physics of thin film optical spectra: an introduction. Berlin, Heidelberg: Springer Berlin Heidelberg.
[53] Rana, A., Park, S. Y., Labanti, C., Fang, F., Yun, S., Dong, Y., ... & Durrant, J. R. 2024. Octupole moment driven free charge generation in partially chlorinated subphthalocyanine for planar heterojunction organic photodetectors. Nature Communications, 15(1), p.5058.
[54] Vergara, M. E. S., Plata, E. I. S., Indili, R. B., Salcedo, R., & Toledano, C. Á. 2024. Structural determination, characterization and computational studies of doped semiconductors base silicon phthalocyanine dihydroxide and dienynoic acids. Heliyon, 10(3).
[55] Soncini, C., Costantini, R., Dell’Angela, M., Morgante, A., & Pedio, M. 2025. Interfacial Charge Transfer Enhances Transient Surface Photovoltage in Hybrid Heterojunctions. Nanomaterials, 15(3), p.154.
[56] Thyda, L., Joseph, J. K., Koppula, N., Sana, S., & Kuppusamy, T. 2025. Carbon Quantum Dots/ZnO Hybrid Nanostructured Thin Films and UV Photodetector Performances. physica status solidi (a), 222(18), p.2500458.
[57] Tsuneda, T., & Taketsugu, T. 2023. Roles of Singlet Fission in the Photosensitization of Silicon Phthalocyanine. The Journal of Physical Chemistry Letters, 14(51), pp.11587-11596.
[58] Wang, Y., Deng, W., Shi, X., Ren, X., Li, B., Li, Y., ... & Zhang, X. 2025. Molecule upgrading metal-semiconductor buried contacts for high-performance and high-ideality single-crystal organic thin-film transistors. National Science Review, 12(7), p.nwaf207.