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81. Xie J, Lee JY, Wang DIC, Ting YP (2007) Silver nanoplates: from biological to biomimetic
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82. Mendiola JA, Rodriguez-Meizoso I, Señoráns FJ, Reglero G (2017) Advanced Microalgal
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85. Santra TS, Bhattacharyya TK, Tseng FG, Barik TK (2012) Influence of flow rate on different
properties of diamond-like nanocomposite thin films grown by PECVD. AIP Adv 2:022132.
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86. Santra TS, Bhattacharyya TK, Patel P, Tseng FG, Barik TK (2011) Structural and tribological
properties of diamond-like nanocomposite thin films. Surf Coatings Technol 206:228–233.
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87. Santra TS, Liu CH, Bhattacharyya TK, Patel P, Barik TK (2010) Characterization of diamondlike nanocomposite thin films grown by plasma enhanced chemical vapor deposition. J Appl
Phys 107:124320. https://doi.org/10.1063/1.3415548
88. IJCA—Diamond-like Nanocomposite (DLN) Films for Microelectro-Mechanical System
(MEMS).
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89. Biomedical applications of diamond-like nanocomposite thin films: ingenta connect. https://
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90. Das T, Ghosh D, Bhattacharyya TK, Maiti TK (2007) Biocompatibility of diamond-like
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856-007-2009-x
91. Nanotechnology applications (With images) | Nanotechnology, Nano science, Nanotechnology art. https://in.pinterest.com/pin/574842339921055473/. Accessed 9 June 2020
92. Global Nanomaterials Market Worth USD 16.8 Billion by 2022. https://www.zionmarketre
search.com/news/nanomaterials-market. Accessed 9 June 2020
93. Nanotechnology global market value 2020 | Statista. https://www.statista.com/statistics/107
3886/global-market-value-nanotechnology/. Accessed 9 Jun 2020
94. Global Nanotechnology Market To Reach $48.9 Billion In 2017. https://www.bccresearch.
com/pressroom/nan/global-nanotechnology-market-reach-$48.9-billion-2017. Accessed 9
June 2020
23
76. Kathiresan K, Manivannan S, Nabeel MA, Dhivya B (2009) Studies on silver nanoparticles synthesized by a marine fungus, Penicillium fellutanum isolated from coastal mangrove
sediment. Colloids Surf B Biointerfaces 71:133–137. https://doi.org/10.1016/j.colsurfb.2009.
01.016
77. Konishi Y, Tsukiyama T, Ohno K, Saitoh N, Nomura T, Nagamine S (2006) Intracellular recovery of gold by microbial reduction of AuCl 4-ions using the anaerobic
bacterium Shewanella algae. Hydrometallurgy 81:24–29. https://doi.org/10.1016/j.hydromet.
2005.09.006
78. (PDF) Biosynthesis of silver, gold and bimetallic nanoparticles using the filamentous fungus
Neurospora crassa | Alfredo R Vilchis-Nestor—Academia.edu. https://www.academia.edu/
22627587/Biosynthesis_of_silver_gold_and_bimetallic_nanoparticles_using_the_filame
ntous_fungus_Neurospora_crassa. Accessed 9 June 2020
79. Goodsell DS (2004) Bionanotechnology: lessons from nature. Wiley-Liss
80. Thakur NS, Dwivedee BP, Banerjee UC, Bhaumik J (2017) Bioinspired synthesis of silver
nanoparticles: characterisation, mechanism and applications. In: Silver Nanoparticles for
Antibacterial Devices. CRC Press, pp 3–36
81. Xie J, Lee JY, Wang DIC, Ting YP (2007) Silver nanoplates: from biological to biomimetic
synthesis. ACS Nano 1:429–439. https://doi.org/10.1021/nn7000883
82. Mendiola JA, Rodriguez-Meizoso I, Señoráns FJ, Reglero G (2017) Advanced Microalgal
Technologies for a Circular Economy. ALGATEC-CM View project. Project Allergy CarUnion European View project
83. Wenqiang G, Shufen L, Ruixiang Y, Yanfeng H (2006) Comparison of composition and
antifungal activity of Artemisia argyi Lévl. et Vant inflorescence essential oil extracted by
hydrodistillation and supercritical carbon dioxide. Nat Prod Res 20:992–998. https://doi.org/
10.1080/14786410600921599
84. Santra TS, Bhattacharyya TK Diamond-Like Nanocomposite (DLN) Films for MicroelectroMechanical System (MEMS). IJCA
85. Santra TS, Bhattacharyya TK, Tseng FG, Barik TK (2012) Influence of flow rate on different
properties of diamond-like nanocomposite thin films grown by PECVD. AIP Adv 2:022132.
https://doi.org/10.1063/1.4721654
86. Santra TS, Bhattacharyya TK, Patel P, Tseng FG, Barik TK (2011) Structural and tribological
properties of diamond-like nanocomposite thin films. Surf Coatings Technol 206:228–233.
https://doi.org/10.1016/j.surfcoat.2011.06.057
87. Santra TS, Liu CH, Bhattacharyya TK, Patel P, Barik TK (2010) Characterization of diamondlike nanocomposite thin films grown by plasma enhanced chemical vapor deposition. J Appl
Phys 107:124320. https://doi.org/10.1063/1.3415548
88. IJCA—Diamond-like Nanocomposite (DLN) Films for Microelectro-Mechanical System
(MEMS).
http://sandbox.ijcaonline.org/proceedings/isdmisc/number6/3478-isdm132.
Accessed 9 June 2020
89. Biomedical applications of diamond-like nanocomposite thin films: ingenta connect. https://
www.ingentaconnect.com/content/asp/sam/2012/00000004/00000001/art00014. Accessed 9
June 2020
90. Das T, Ghosh D, Bhattacharyya TK, Maiti TK (2007) Biocompatibility of diamond-like
nanocomposite thin films. J Mater Sci Mater Med 18:493–500. https://doi.org/10.1007/s10
856-007-2009-x
91. Nanotechnology applications (With images) | Nanotechnology, Nano science, Nanotechnology art. https://in.pinterest.com/pin/574842339921055473/. Accessed 9 June 2020
92. Global Nanomaterials Market Worth USD 16.8 Billion by 2022. https://www.zionmarketre
search.com/news/nanomaterials-market. Accessed 9 June 2020
93. Nanotechnology global market value 2020 | Statista. https://www.statista.com/statistics/107
3886/global-market-value-nanotechnology/. Accessed 9 Jun 2020
94. Global Nanotechnology Market To Reach $48.9 Billion In 2017. https://www.bccresearch.
com/pressroom/nan/global-nanotechnology-market-reach-$48.9-billion-2017. Accessed 9
June 2020
