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References
Оглавление1 1 Aithal, P.S. and Aithal, S. (2019). Management of Universal Technologies & their Industry Implications. Proceedings of International Conference on Emerging Trends in Management, IT and Education 1 (2): 318–328. ISBN No.: 978‐87‐941751‐2‐4. DOI: https://doi.org/10.5281/zenodo.3559719.
2 2 Aithal, P.S. and Aithal, S. (2018). Study of various general‐purpose technologies and their contribution towards developing sustainable society. International Journal of Management, Technology, and Social Sciences (IJMTS) 3 (2): 16–33.
3 3 Aithal, P.S. (2016). Nanotechnology innovations & business opportunities: a review. International Journal of Management, IT and Engineering (IJMIE) 6 (1): 182–204.
4 4 Aithal, P.S. and Aithal, S. (2015). Managing anticipated breakthrough technologies of 21st century ‐ a review. International Journal of Research & Development in Technology and Management Sciences 21 (6): 112–133.
5 5 Aithal, P.S. and Aithal, S. (2016). Nanotechnology innovations and commercialization – opportunities, challenges & reasons for delay. International Journal of Engineering and Manufacturing (IJEM) 6 (6): 15–25.
6 6 Renn, O. and Roco, M. (2006). White paper no.2 Nanotechnology risk governance. International Risk Governance Council, Geneva, Switzerland. p. 103.
7 7 Jaiswal, S. and Mojahid, A. (2020). Innovation in society through green\eco‐friendly technology. Journal for Modern Trends in Science and Technology 6 (01): 37–43.
8 8 Aithal, P.S. and Aithal, S. (2016). Opportunities & challenges for green technology in 21st century. International Journal of Current Research and Modern Education (IJCRME) 1 (1): 818–828.
9 9 Ray, P.C., Yu, H., and Fu, P.P. (2009). Toxicity and environmental risks of nanomaterials: challenges and future needs. Journal of Environmental Science and Health Part C 27 (1): 1–35.
10 10 Batley, G.E., Kirby, J.K., and McLaughlin, M.J. (2013). Fate and risks of nanomaterials in aquatic and terrestrial environments. Accounts of Chemical Research 46 (3): 854–862.
11 11 Coll, C., Notter, D., Gottschalk, F. et al. (2016). Probabilistic environmental risk assessment of five nanomaterials (nano‐TiO2, nano‐Ag, nano‐ZnO, CNT, and fullerenes). Nanotoxicology 10 (4): 436–444.
12 12 Lanone, S. and Boczkowski, J. (2006). Biomedical applications and potential health risks of nanomaterials: molecular mechanisms. Current Molecular Medicine 6 (6): 651–663.
13 13 Medina‐Reyes, E.I., Garcia‐Viacobo, D., Carrero‐Martinez, F.A., and Chirino, Y.I. (2017). Applications and risks of nanomaterials used in regenerative medicine, delivery systems, theranostics, and therapy. Critical Reviews in Therapeutic Drug Carrier Systems 34 (1): 35–61.
14 14 Hristozov, D., Gottardo, S., Semenzin, E. et al. (2016). Frameworks and tools for risk assessment of manufactured nanomaterials. Environment International 95: 36–53.
15 15 Rezaei, A. and Kamali, A.R. (2018). Green production of carbon nanomaterials in molten salts, mechanisms and applications. Diamond and Related Materials 83: 146–161.
16 16 Geraldes, A.N., da Silva, A.A., Leal, J. et al. (2016). Green nanotechnology from plant extracts: synthesis and characterization of gold nanoparticles. Advances in Nanoparticles 5 (3): 176–185.
17 17 Ortiz de Zárate, D., García‐Meca, C., Pinilla‐Cienfuegos, E. et al. (2020). Green and sustainable manufacture of ultrapure engineered nanomaterials. Nanomaterials 10 (3): 466–480.
18 18 Saif, S., Tahir, A., and Chen, Y. (2016). Green synthesis of iron nanoparticles and their environmental applications and implications. Nanomaterials 6 (11): 209–235.
19 19 Al‐Dhabi, N.A. and Arasu, M.V. (2018). Environmentally‐friendly green approach for the production of zinc oxide nanoparticles and their anti‐fungal, ovicidal, and larvicidal properties. Nanomaterials 8 (7): 500–513.
20 20 Bhosale, R.R., Kulkarni, A.S., Gilda, S.S. et al. (2014). Innovative eco‐friendly approaches for green synthesis of silver nanoparticles. International Journal of Pharmaceutical Sciences and Nanotechnology 7 (1): 2328–2337.
21 21 Rai, M. and Ingle, A. (2012). Role of nanotechnology in agriculture with special reference to management of insect pests. Applied Microbiology and Biotechnology 94 (2): 287–293.
22 22 Yashveer, S., Singh, V., Kaswan, V. et al. (2014). Green biotechnology, nanotechnology and bio‐fortification: perspectives on novel environment‐friendly crop improvement strategies. Biotechnology and Genetic Engineering Reviews 30 (2): 113–126.
23 23 Jain, A., Ranjan, S., Dasgupta, N., and Ramalingam, C. (2018). Nanomaterials in food and agriculture: an overview on their safety concerns and regulatory issues. Critical Reviews in Food Science and Nutrition 58 (2): 297–317.
24 24 Omanović‐Mikličanina, E. and Maksimović, M. (2016). Nanosensors applications in agriculture and food industry. Bull ChemTechnol Bosnia Herzegovina 47: 59–70.
25 25 Mazzaglia, A., Fortunati, E., Kenny, J.M. et al. (2017). Nanomaterials in plant protection. Nanotechnology in Agriculture and Food Science 7: 115–133.
26 26 Huang, Y., Mei, L., Chen, X., and Wang, Q. (2018). Recent developments in food packaging based on nanomaterials. Nanomaterials 8 (10): 830.
27 27 Duhan, J.S., Kumar, R., Kumar, N. et al. (2017). Nanotechnology: the new perspective in precision agriculture. Biotechnology Reports 15: 11–23.
28 28 Aithal, S. and Aithal, P.S. (2018). Concept of ideal water purifier system to produce potable water and its realization opportunities using nanotechnology. International Journal of Applied Engineering and Management Letters (IJAEML) 2 (2): 8–26.
29 29 Patanjali, P., Singh, R., Kumar, A., and Chaudhary, P. (2019). Nanotechnology for water treatment: a green approach. In: Green Synthesis, Characterization and Applications of Nanoparticles (eds. A. Shukla and S. Iravani), 485–512. Elsevier.
30 30 Gautam, P.K., Singh, A., Misra, K. et al. (2019). Synthesis and applications of biogenic nanomaterials in drinking and wastewater treatment. Journal of Environmental Management 231: 734–748.
31 31 Bishoge, O.K., Zhang, L., Suntu, S.L. et al. (2018). Remediation of water and wastewater by using engineered nanomaterials: a review. Journal of Environmental Science and Health, Part A 53 (6): 537–554.
32 32 Kamali, M., Persson, K.M., Costa, M.E., and Capela, I. (2019). Sustainability criteria for assessing nanotechnology applicability in industrial wastewater treatment: current status and future outlook. Environment International 125: 261–276.
33 33 Teow, Y.H. and Mohammad, A.W. (2019). New generation nanomaterials for water desalination: a review. Desalination 451: 2–17.
34 34 Adeleye, A.S., Conway, J.R., Garner, K. et al. (2016). Engineered nanomaterials for water treatment and remediation: costs, benefits, and applicability. Chemical Engineering Journal 286: 640–662.
35 35 Sivaraj, R., Salam, H.A., Rajiv, P., and Rajendran, V. (2015). Green nanotechnology: the solution to sustainable development of environment. In: Environmental Sustainability, 311–324. New Delhi: Springer.
36 36 Aithal, P.S. and Aithal, S. (2016). Nanotechnology innovations & business opportunities in renewable energy sector. International Journal of Engineering Research and Modern Education (IJERME) 1 (1): 674–692.
37 37 Aithal, P.S. and Aithal, S. (2018). The concept & characteristics of ideal energy system and its realization constraints. International Journal of Applied Engineering and Management Letters (IJAEML) 2 (2): 127–137.
38 38 Aithal, S. and Aithal, P.S. (2018). The realization opportunity of ideal energy system using nanotechnology based research and innovations. International Journal of Advanced Trends in Engineering and Technology 3 (2): 1–15.
39 39 Moore, E.A., Babbitt, C.W., Gaustad, G., and Moore, S.T. (2018). Portfolio optimization of nanomaterial use in clean energy technologies. Environmental Science and Technology 52 (7): 4440–4448.
40 40 Guo, K.W. (2012). Green nanotechnology of trends in future energy: a review. International Journal of Energy Research 36 (1): 1–17.
41 41 Pandey, G. (2018). Nanotechnology for achieving green‐economy through sustainable energy. Rasayan Journal of Chemistry 11: 942–950.
42 42 Choi, J.W., Wang, D., and Wang, D. (2016). Nanomaterials for energy conversion and storage. ChemNanoMat 2 (7): 560–561.
43 43 Qu, K., Wang, Y., Vasileff, A. et al. (2018). Polydopamine‐inspired nanomaterials for energy conversion and storage. Journal of Materials Chemistry A 6 (44): 21827–21846.
44 44 Adesina, A. (2020). Nanomaterials in cementitious composites: review of durability performance. Journal of Building Pathology and Rehabilitation 5 (1): 1–9.
45 45 Peyvandi, A., Soroushian, P., Farhadi, N., and Balachandra, A.M. (2018). Evaluation of the reinforcement efficiency of low‐cost graphite nanomaterials in high‐performance concrete. KSCE Journal of Civil Engineering 22 (10): 3875–3882.
46 46 Kwalramani, M.A. and Syed, Z.I. (2018). Application of nanomaterials to enhance microstructure and mechanical properties of concrete. International Journal of Integrated Engineering 10 (2): 98–104.
47 47 Ugwu, O.O., Arop, J.B., Nwoji, C.U., and Osadebe, N.N. (2013). Nanotechnology as a preventive engineering solution to highway infrastructure failures. Journal of Construction Engineering and Management 139 (8): 987–993.
48 48 Sev, A. and Ezel, M. (2014). Nanotechnology innovations for the sustainable buildings of the future. World Academy of Science, Engineering and Technology International Journal of Civil, Environmental, Structural, Construction and Architectural Engineering 8 (8): 886–896.
49 49 Oke, A.E., Aigbavboa, C.O., and Semenya, K. (2017). Energy savings and sustainable construction: examining the advantages of nanotechnology. Energy Procedia 142: 3839–3843.
50 50 Yapar, E.A. and İNAL, Ö. (2012). Nanomaterials and cosmetics. İstanbul ÜniversitesiEczacılıkFakültesiDergisi 42 (1): 43–70.
51 51 Srinivas, K. (2016). The current role of nanomaterials in cosmetics. Journal of Chemical and Pharmaceutical Research 8 (5): 906–914.
52 52 Masunaga, T. (2014). Nanomaterials in cosmetics‐‐present situation and future. Yakugakuzasshi: Journal of the Pharmaceutical Society of Japan 134 (1): 39.
53 53 Cao, M., Li, J., Tang, J. et al. (2016). Gold nanomaterials in consumer cosmetics nanoproducts: analyses, characterization, and dermal safety assessment. Small 12 (39): 5488–5496.
54 54 Bilal, M. and Iqbal, H. (2020). New insights on unique features and role of nanostructured materials in cosmetics. Cosmetics 7 (2): 24.
55 55 Gajbhiye, S. and Sakharwade, S. (2016). Silver nanoparticles in cosmetics. Journal of Cosmetics, Dermatological Sciences and Applications 6 (1): 48–53.
56 56 Shalaby, M.N. and Saad, M.M. (2020). Advanced material engineering and nanotechnology for improving sports performance and equipment. International Journal of Psychosocial Rehabilitation 24 (10): 2314–2322.
57 57 Mathew, J., Joy, J., and George, S.C. (2019). Potential applications of nanotechnology in transportation: a review. Journal of King Saud University‐Science 31 (4): 586–594.
58 58 Lloyd, S.M. and Lave, L.B. (2003). Life cycle economic and environmental implications of using nanocomposites in automobiles. Environmental Science & Technology 37 (15): 3458–3466.
59 59 Aithal, P.S. and Aithal, S. (2016). Nanotechnological innovations & business environment for Indian automobile sector: a futuristic approach. International Journal of Scientific Research and Modern Education (IJSRME) 1 (1): 296–307.
60 60 Wallner, E., Sarma, D.H.R., Myers, B., et al. (2010). Nanotechnology applications in future automobiles (No. 2010‐01‐1149). SAE Technical Paper. pp. 1–12. DOI: https://doi.org/10.4271/2010‐01‐1149.
61 61 Gurjar, B.S. and Tyagi, P. (2015). Applications of nanotechnology in automobile industry for efficiency enhancement and energy saving‐a review. International Journal of Interdisciplinary Research 2 (3): 1–7.
62 62 Shafique, M. and Luo, X. (2019). Nanotechnology in transportation vehicles: an overview of its applications, environmental, health and safety concerns. Materials 12 (15): 2493.
63 63 Krishnan, A., Shandilya, S., Balasubramanya, H.S., and Gupta, P. (2020). A review on applications of carbon nanotubes in automobiles. International Journal of Mechanical Engineering and Technology 11 (1): 204–210.
64 64 Contado, C. (2015). Nanomaterials in consumer products: a challenging analytical problem. Frontiers in chemistry 3 (48): 1–20.
65 65 Hansen, S.F., Baun, A., Michelson, E.S. et al. (2009). Nanomaterials in consumer products. In: Nanomaterials: Risks and Benefits (eds. I. Linkov and J. Steevens), 359–367. Dordrecht: Springer.
66 66 Vance, M.E., Kuiken, T., Vejerano, E.P. et al. (2015). Nanotechnology in the real world: redeveloping the nanomaterial consumer products inventory. Beilstein Journal of Nanotechnology 6 (1): 1769–1780.
67 67 Pak, Y.E. (2001). MEMS and nanotechnology research for the electronics industry. In: Smart Structures and Materials 2001: Smart Electronics and MEMS, vol. 4334 (ed. V.K. Varadan), 23–29. International Society for Optics and Photonics.
68 68 Wu, W. (2017). Inorganic nanomaterials for printed electronics: a review. Nanoscale 9 (22): 7342–7372.
69 69 Moghaddam, H.K., Maraki, M.R., and Rajaei, A. (2020). Application of carbon nanotubes (CNT) on the computer science and electrical engineering: a review. International Journal of Reconfigurable and Embedded Systems 9 (1): 61–82.
70 70 Tyagi, M. and Tyagi, D. (2014). Polymer nanocomposites and their applications in electronics industry. International Journal of Electronic and Electrical Engineering 7 (6): 603–608.
71 71 Vargas‐Bernal, R., Herrera‐Pérez, G., and Tecpoyotl‐Torres, M. (2019). The impact of carbon nanotubes and graphene on electronics industry. In: Advanced Methodologies and Technologies in Digital Marketing and Entrepreneurship (ed. M. Khosrow‐Pour), 382–394. IGI Global.
72 72 Anuhya, K.H. and Eunice, T.G. (2016). Potential impact of nanomaterials in information and communication technologies. Indian Journal of Research in Pharmacy and Biotechnology 4 (6): 267–270.
73 73 Kardanmoghaddam, H., Maraki, M., and Rajaei, A. (2020). Graphene‐reinforced polymeric nanocomposites in computer and electronics industries. FactaUniversitatis, Series: Electronics and Energetics 33 (3): 351–378.
74 74 Chen, X., Akinwande, D., Lee, K.J. et al. (2010). Fully integrated graphene and carbon nanotube interconnects for gigahertz high‐speed CMOS electronics. IEEE Transactions on Electron Devices 57 (11): 3137–3143.
75 75 Ahn, E.C., Wong, H.S.P., and Pop, E. (2018). Carbon nanomaterials for non‐volatile memories. Nature Reviews Materials 3 (3): 1–15.
76 76 Le Ferrand, H., Chabi, S., and Agarwala, S. (2020). 3D assembly of graphene nanomaterials for advanced electronics. Advanced Intelligent Systems 2 (5): 1–16.
77 77 Thomas, S.P., Al‐Mutairi, E.M., and De, S.K. (2013). Impact of nanomaterials on health and environment. Arabian Journal for Science and Engineering 38 (3): 457–477.
78 78 Wacker, M.G. (2014). Nanotherapeutics—product development along the “nanomaterial” discussion. Journal of Pharmaceutical Sciences 103 (3): 777–784.
79 79 Schulte, P.A., Geraci, C.L., Murashov, V. et al. (2014). Occupational safety and health criteria for responsible development of nanotechnology. Journal of Nanoparticle Research 16 (2153): 1–17.
80 80 Gopi, S., Amalraj, A., and Thomas, S. (2016). Effective drug delivery system of biopolymers based on nanomaterials and hydrogels—a review. Drug Desigining 5 (129): 2169–0138.
81 81 Liang, X.J., Chen, C., Zhao, Y. et al. (2008). Biopharmaceutics and therapeutic potential of engineered nanomaterials. Current Drug Metabolism 9 (8): 697–709.
82 82 Arepalli, S. and Moloney, P. (2015). Engineered nanomaterials in aerospace. MRS Bulletin 40 (10): 804–811.
83 83 Rizakhanov, R.N., Polyanskiy, M.N., Malinovskaya, O.S., and Tsvetkova, E.V. (2012). CVD facility for the formation of carbon nanomaterials on a space station board. Fullerenes, Nanotubes and Carbon Nanostructures 20 (4–7): 482–486.
84 84 Haynes, H. and Asmatulu, R. (2013). Nanotechnology safety in the aerospace industry. In: Nanotechnology Safety (ed. R. Asmatulu), 85–97. Elsevier.
85 85 Levchenko, I., Xu, S., Teel, G. et al. (2018). Recent progress and perspectives of space electric propulsion systems based on smart nanomaterials. Nature Communications 9 (1): 1–19.
86 86 Carpinteri, A. and Pugno, N. (2008). Bio‐inspired hierarchical nanomaterials for space applications. Journal of the British Interplanetary Society 61 (8): 290–294.
87 87 Novikov, L.S. and Voronina, E.N. (2017). Potential space applications of nanomaterials. In: Protection of Materials and Structures from the Space Environment (ed. J. Kleiman), 139–147. Cham: Springer.
88 88 Nilsson, M., Griggs, D., and Visbeck, M. (2016). Policy: map the interactions between sustainable development goals. Nature 534 (7607): 320–322.
89 89 Aithal, P.S. and Aithal, S. (2015). Ideal technology concept & its realization opportunity using nanotechnology. International Journal of Application or Innovation in Engineering & Management (IJAIEM) 4 (2): 153–164.
90 90 Aithal, P.S. and Aithal, S. (2018). Nanotechnology based innovations and human life comfortability –are we marching towards immortality? International Journal of Applied Engineering and Management Letters (IJAEML) 2 (2): 71–86.
91 91 Aithal, P.S. and Madhushree, L.M. (2019). Emerging trends in ICCT as universal technology for strategic development of industry sectors. In: IT and Computing for All the Domains and Professionals: The Emergence of Computer and Information Sciences (eds. P.K. Paul, A. Bhuimali, K.S. Tiwary and P.S. Aithal), 1–26. New Delhi: New Delhi Publishers, ISBN: 978‐93‐88879‐66‐8.
92 92 Aithal, P.S. and Aithal, S. (2016). Nanotechnology innovations and commercialization – opportunities, challenges & reasons for delay. Proceedings of National Conference on Changing Perspectives of Management, IT, and Social Sciences in Contemporary Environment 14: 1–12, ISBN 978‐93‐5265‐6523.
93 93 Sridhar Acharya, P. and Aithal, P.S. (2015). Innovations in effective management of energy using green technology. International Journal of Conceptions on Management and Social Sciences 3 (2): 18–22.
94 94 Aithal, P.S. and Jeevan, P. (2016). Strategic rethinking of management education: green MBA model. International Journal of Management, IT and Engineering (IJMIE) 6 (1): 55–73.
95 95 Aithal, P.S. and Rao, P. (2016). How service industries can transform themselves into green business industries. International Journal of Management Sciences and Business Research (IJMSBR) 5 (4): 150–158.
96 96 Han, W. and Liu, L.C. (2009). Discussion on green education in universities. Journal of Daqing Normal University 1 (1): 39–45.
97 97 Wu, G. (2011). A new concept of green education: the cultivation model for successful and practical talents. International Forum of Teaching & Studies 7 (1): 45–48.
98 98 Aithal, P.S. (2015). Concept of ideal business & its realization using e‐business model. International Journal of Science and Research (IJSR) 4 (3): 1267–1274.
99 99 Aithal, P.S. (2015). Mobile business as an optimum model for ideal business. International Journal of Management, IT and Engineering (IJMIE) 5 (7): 146–159.
100 100 Aithal, P.S. and Aithal, S. (2015). An innovative education model to realize ideal education system. International Journal of Scientific Research and Management (IJSRM) 3 (3): 2464–2469.
101 101 Rao, P. and Aithal, P.S. (2016). Green education concepts & strategies in higher education model. International Journal of Scientific Research and Modern Education (IJSRME) 1 (1): 793–802.
102 102 Boye, J.I. and Arcand, Y. (2013). Current trends in green technologies in food production and processing. Food Engineering Reviews 5 (1): 1–17.
103 103 Varma, R.S. (2012). Greener approach to nanomaterials and their sustainable applications. Current Opinion in Chemical Engineering 1 (2): 123–128.
104 104 Silva, L.P., Reis, I.G., and Bonatto, C.C. (2015). Green synthesis of metal nanoparticles by plants: current trends and challenges. In: Green Processes for Nanotechnology (eds. V. Basiuk and E. Basiuk), 259–275. Cham: Springer.