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from molecular principles to bionanotechnology. Adv Mater
150. Qi C, Liu J, Jin Y, Xu L, Wang G, Wang Z, Wang L (2018) Photo-crosslinkable, injectable
sericin hydrogel as 3D biomimetic extracellular matrix for minimally invasive repairing
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151. Qin D, Xia Y, Whitesides GM (2010) Soft lithography for micro- and nanoscale patterning.
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153. Qureshi D, Nayak SK, Maji S, Anis A, Kim D, Pal K (2019) Environment sensitive hydrogels
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158. Rizzi SC, Hubbell JA (2005) Recombinant protein-co-PEG networks as cell-adhesive and
proteolytically degradable hydrogel matrixes. Part I: Development and physicochemical
characteristics. Biomacromol 6:1226–1238. https://doi.org/10.1021/bm049614c
159. Sadat-Shojai M, Khorasani M-T, Jamshidi A (2015) 3-Dimensional cell-laden nanohydroxyapatite/protein hydrogels for bone regeneration applications. Mater Sci Eng, C
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responsive double walled biodegradable nanogels coated with eucalyptus oil for the controlled
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163. Santra TS, Bhattacharyya TK, Mishra P, Tseng FG, Barik TK (2012) Biomedical applications
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164. Santra TS, Bhattacharyya TK, Patel P, Tseng FG, Barik TK (2011) Structural and tribological
properties of diamond-like nanocomposite thin films. Surf Coatings Technol. https://doi.org/
10.1016/j.surfcoat.2011.06.057
165. 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
166. 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 10(1063/1):3415548
167. Santra TS, Bhattacharyya TK, Patel P, Tseng FG, Barik TK (2012) Diamond, diamond-like
carbon (DLC) and diamond-like nanocomposite (DLN) thin films for MEMS applications.
In: Microelectromechanical systems and devices
G. Keerthiga et al.
148. Peppas NA, Kim B (2006) Stimuli-sensitive protein delivery systems. J Drug Deliv Sci Technol
16:11–18
149. Peppas NA, Hilt JZ, Khademhosseini A, Langer R (2006) Hydrogels in biology and medicine:
from molecular principles to bionanotechnology. Adv Mater
150. Qi C, Liu J, Jin Y, Xu L, Wang G, Wang Z, Wang L (2018) Photo-crosslinkable, injectable
sericin hydrogel as 3D biomimetic extracellular matrix for minimally invasive repairing
cartilage. Biomaterials. https://doi.org/10.1016/j.biomaterials.2018.02.016
151. Qin D, Xia Y, Whitesides GM (2010) Soft lithography for micro- and nanoscale patterning.
Nat Protoc. https://doi.org/10.1038/nprot.2009.234
152. Qiu LY, Bae YH (2006) Polymer architecture and drug delivery. Pharm Res 23:1–30
153. Qureshi D, Nayak SK, Maji S, Anis A, Kim D, Pal K (2019) Environment sensitive hydrogels
for drug delivery applications. Eur Polym J 120:109220. https://doi.org/10.1016/j.eurpolymj.
2019.109220
154. Rafieian S, Mirzadeh H, Mahdavi H, Masoumi ME (2019) A review on nanocomposite hydrogels and their biomedical applications. IEEE J Sel Top Quantum Electron 26:154–174. https://
doi.org/10.1515/secm-2017-0161
155. Raub CB, Suresh V, Krasieva T, Lyubovitsky J, Mih JD, Putnam AJ, Tromberg BJ, George
SC (2007) Noninvasive assessment of collagen gel microstructure and mechanics using
multiphoton microscopy. Biophys J. https://doi.org/10.1529/biophysj.106.097998
156. Rašovi´ c I (2017) Water-soluble fullerenes for medical applications. Mater Sci Technol (United
Kingdom)
157. Richter A, Paschew G, Klatt S, Lienig J, Arndt KF, Adler HJP (2008) Review on hydrogelbased pH sensors and microsensors. Sensors
158. Rizzi SC, Hubbell JA (2005) Recombinant protein-co-PEG networks as cell-adhesive and
proteolytically degradable hydrogel matrixes. Part I: Development and physicochemical
characteristics. Biomacromol 6:1226–1238. https://doi.org/10.1021/bm049614c
159. Sadat-Shojai M, Khorasani M-T, Jamshidi A (2015) 3-Dimensional cell-laden nanohydroxyapatite/protein hydrogels for bone regeneration applications. Mater Sci Eng, C
49:835–843. https://doi.org/10.1016/j.msec.2015.01.067
160. Sahoo SK, Labhasetwar V (2003) Nanotech approaches to drug delivery and imaging. Drug
Discov Today
161. Sahu P, Kashaw SK, Jain S, Sau S, Iyer AK (2017) Assessment of penetration potential of pH
responsive double walled biodegradable nanogels coated with eucalyptus oil for the controlled
delivery of 5-fluorouracil: in vitro and ex vivo studies. J Control Release. https://doi.org/10.
1016/j.jconrel.2017.03.023
162. Said HM, Alla SGA, El-Naggar AWM (2004) Synthesis and characterization of novel gels
based on carboxymethyl cellulose/acrylic acid prepared by electron beam irradiation. React
Funct Polym. https://doi.org/10.1016/j.reactfunctpolym.2004.07.002
163. Santra TS, Bhattacharyya TK, Mishra P, Tseng FG, Barik TK (2012) Biomedical applications
of diamond-like nanocomposite thin films. Sci Adv Mater. https://doi.org/10.1166/sam.2012.
1258
164. Santra TS, Bhattacharyya TK, Patel P, Tseng FG, Barik TK (2011) Structural and tribological
properties of diamond-like nanocomposite thin films. Surf Coatings Technol. https://doi.org/
10.1016/j.surfcoat.2011.06.057
165. 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
166. 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 10(1063/1):3415548
167. Santra TS, Bhattacharyya TK, Patel P, Tseng FG, Barik TK (2012) Diamond, diamond-like
carbon (DLC) and diamond-like nanocomposite (DLN) thin films for MEMS applications.
In: Microelectromechanical systems and devices
