26
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136. Manoj H, Gupta P, Loganathan M, Nagai M, Wankhar S, Santra (2020) Microneedles: current
trends & applications. In: Microfluidics and bio-MEMS: devices and applications. Jenny
Stanford Publisher
137. Kar S, Shinde P, Nagai M, Santra TS (2020) Optical manipulation of cells. In: Microfluidics
and bio-MEMS: devices and applications. Jenny Stanford Publisher
138. Santra TS, Wu TH, Chiou EPY (2016) Photothermal microfluidics. In: Optical MEMS for
chemical analysis and biomedicine. Institution of Engineering and Technology, pp 289–323
139. Santra TS, Tseng F-G (2016) Electroporation for single-cell analysis, pp 55–83
140. Santra TS, Wang P-C, Tseng FG (2013) Electroporation based drug delivery and its applications. In: Advances in Micro/Nano Electromechanical Systems and Fabrication Technologies.
InTech
141. Shanmugam MM, Santra TS (2016) Microinjection for single-cell analysis. Springer, Berlin,
Heidelberg, pp 85–129
142. Santra TS, Kar S, Chen C-W, Borana J, Chen T-C, Lee M-C, Tseng F-G (2020) Near-infrared
nanosecond-pulsed laser-activated high efficient intracellular delivery mediated by nanocorrugated mushroom-shaped gold-coated polystyrene nanoparticles. Nanoscale. https://doi.
org/10.1039/d0nr01792b
143. Shinde P, Mohan L, Kumar A, Dey K, Maddi A, Patananan AN, Tseng F-G, Chang H-Y,
Nagai M, Santra TS (2018) Current trends of microfluidic single-cell technologies. Int J Mol
Sci 19. https://doi.org/10.3390/ijms19103143
144. Kar S, Loganathan M, Dey K, Shinde P, Chang H-Y, Nagai M, Santra TS (2018) Singlecell electroporation: current trends, applications and future prospects. J Micromechanics
Microengineering 28:123002. https://doi.org/10.1088/1361-6439/aae5ae
145. Narasimhan AK, Lakshmi SB, Santra TS, Rao MSR, Krishnamurthi G (2017) Oxygenated
graphene quantum dots (GQDs) synthesized using laser ablation for long-term real-time
tracking and imaging. RSC Adv 7:53822–53829. https://doi.org/10.1039/c7ra10702a
146. Silvestre C, Duraccio D, Cimmino S (2011) Food packaging based on polymer nanomaterials.
Prog. Polym, Sci
147. Mihindukulasuriya SDF, Lim LT (2014) Nanotechnology development in food packaging: a
review. Trends Food Sci Technol. https://doi.org/10.1016/j.tifs.2014.09.009
148. Sekhon BS (2010) Food nanotechnology—an overview. Nanotechnol Sci Appl
149. Bajpai VK, Kamle M, Shukla S, Mahato DK, Chandra P, Hwang SK, Kumar P, Huh YS, Han
YK (2018) Prospects of using nanotechnology for food preservation, safety, and security. J.
Food Drug Anal
150. Chaudhry Q, Scotter M, Blackburn J, Ross B, Boxall A, Castle L, Aitken R, Watkins R (2008)
Applications and implications of nanotechnologies for the food sector. Food Addit Contam
Part A Chem Anal Control Expo Risk Assess
151. Sharma C, Dhiman R, Rokana N, Panwar H (2017) Nanotechnology: an untapped resource
for food packaging. Front Microbiol
152. Ibrahim RK, Hayyan M, AlSaadi MA, Hayyan A, Ibrahim S (2016) Environmental application
of nanotechnology: air, soil, and water. Environ Sci Pollut Res
153. Mehndiratta P, Jain A, Srivastava S, Gupta N (2013) Environmental pollution and nanotechnology. Environ Pollut. https://doi.org/10.5539/ep.v2n2p49
154. Zhang B, Misak H, Dhanasekaran PS, Kalla D, Asmatulu R (2011) Environmental impacts
of nanotechnology and its products. Am Soc Eng Educ
155. Karn B, Kuiken T, Otto M (2009) Nanotechnology and in situ remediation: a review of the
benefits and potential risks. Environ Health Perspect
156. Van Hee VC, Kaufman JD, Scott Budinger GR, Mutlu GM (2010) Update in environmental
and occupational medicine 2009. Am J Respir Crit Care Med 181:1174–1180
157. Pope AC, Burnett RT, Krewski D, Jerrett M, Shi Y, Calle EE, Thun MJ (2009) Cardiovascular
mortality and exposure to airborne fine particulate matter and cigarette smoke shape of the
exposure-response relationship. Circulation 120:941–948. https://doi.org/10.1161/CIRCUL
ATIONAHA.109.857888
158. Bernd N (2010) Pollution prevention and treatment using nanotechnology. In: Nanotechnology
T. K. Barik et al.
136. Manoj H, Gupta P, Loganathan M, Nagai M, Wankhar S, Santra (2020) Microneedles: current
trends & applications. In: Microfluidics and bio-MEMS: devices and applications. Jenny
Stanford Publisher
137. Kar S, Shinde P, Nagai M, Santra TS (2020) Optical manipulation of cells. In: Microfluidics
and bio-MEMS: devices and applications. Jenny Stanford Publisher
138. Santra TS, Wu TH, Chiou EPY (2016) Photothermal microfluidics. In: Optical MEMS for
chemical analysis and biomedicine. Institution of Engineering and Technology, pp 289–323
139. Santra TS, Tseng F-G (2016) Electroporation for single-cell analysis, pp 55–83
140. Santra TS, Wang P-C, Tseng FG (2013) Electroporation based drug delivery and its applications. In: Advances in Micro/Nano Electromechanical Systems and Fabrication Technologies.
InTech
141. Shanmugam MM, Santra TS (2016) Microinjection for single-cell analysis. Springer, Berlin,
Heidelberg, pp 85–129
142. Santra TS, Kar S, Chen C-W, Borana J, Chen T-C, Lee M-C, Tseng F-G (2020) Near-infrared
nanosecond-pulsed laser-activated high efficient intracellular delivery mediated by nanocorrugated mushroom-shaped gold-coated polystyrene nanoparticles. Nanoscale. https://doi.
org/10.1039/d0nr01792b
143. Shinde P, Mohan L, Kumar A, Dey K, Maddi A, Patananan AN, Tseng F-G, Chang H-Y,
Nagai M, Santra TS (2018) Current trends of microfluidic single-cell technologies. Int J Mol
Sci 19. https://doi.org/10.3390/ijms19103143
144. Kar S, Loganathan M, Dey K, Shinde P, Chang H-Y, Nagai M, Santra TS (2018) Singlecell electroporation: current trends, applications and future prospects. J Micromechanics
Microengineering 28:123002. https://doi.org/10.1088/1361-6439/aae5ae
145. Narasimhan AK, Lakshmi SB, Santra TS, Rao MSR, Krishnamurthi G (2017) Oxygenated
graphene quantum dots (GQDs) synthesized using laser ablation for long-term real-time
tracking and imaging. RSC Adv 7:53822–53829. https://doi.org/10.1039/c7ra10702a
146. Silvestre C, Duraccio D, Cimmino S (2011) Food packaging based on polymer nanomaterials.
Prog. Polym, Sci
147. Mihindukulasuriya SDF, Lim LT (2014) Nanotechnology development in food packaging: a
review. Trends Food Sci Technol. https://doi.org/10.1016/j.tifs.2014.09.009
148. Sekhon BS (2010) Food nanotechnology—an overview. Nanotechnol Sci Appl
149. Bajpai VK, Kamle M, Shukla S, Mahato DK, Chandra P, Hwang SK, Kumar P, Huh YS, Han
YK (2018) Prospects of using nanotechnology for food preservation, safety, and security. J.
Food Drug Anal
150. Chaudhry Q, Scotter M, Blackburn J, Ross B, Boxall A, Castle L, Aitken R, Watkins R (2008)
Applications and implications of nanotechnologies for the food sector. Food Addit Contam
Part A Chem Anal Control Expo Risk Assess
151. Sharma C, Dhiman R, Rokana N, Panwar H (2017) Nanotechnology: an untapped resource
for food packaging. Front Microbiol
152. Ibrahim RK, Hayyan M, AlSaadi MA, Hayyan A, Ibrahim S (2016) Environmental application
of nanotechnology: air, soil, and water. Environ Sci Pollut Res
153. Mehndiratta P, Jain A, Srivastava S, Gupta N (2013) Environmental pollution and nanotechnology. Environ Pollut. https://doi.org/10.5539/ep.v2n2p49
154. Zhang B, Misak H, Dhanasekaran PS, Kalla D, Asmatulu R (2011) Environmental impacts
of nanotechnology and its products. Am Soc Eng Educ
155. Karn B, Kuiken T, Otto M (2009) Nanotechnology and in situ remediation: a review of the
benefits and potential risks. Environ Health Perspect
156. Van Hee VC, Kaufman JD, Scott Budinger GR, Mutlu GM (2010) Update in environmental
and occupational medicine 2009. Am J Respir Crit Care Med 181:1174–1180
157. Pope AC, Burnett RT, Krewski D, Jerrett M, Shi Y, Calle EE, Thun MJ (2009) Cardiovascular
mortality and exposure to airborne fine particulate matter and cigarette smoke shape of the
exposure-response relationship. Circulation 120:941–948. https://doi.org/10.1161/CIRCUL
ATIONAHA.109.857888
158. Bernd N (2010) Pollution prevention and treatment using nanotechnology. In: Nanotechnology
