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Tasuku Nakajima
Tasuku Nakajima
Verified email at sci.hokudai.ac.jp
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Cited by
Year
Physical hydrogels composed of polyampholytes demonstrate high toughness and viscoelasticity
TL Sun, T Kurokawa, S Kuroda, AB Ihsan, T Akasaki, K Sato, MA Haque, ...
Nature materials 12 (10), 932-937, 2013
18052013
Oppositely charged polyelectrolytes form tough, self-healing, and rebuildable hydrogels
F Luo, TL Sun, T Nakajima, T Kurokawa, Y Zhao, K Sato, A Bin Ihsan, X Li, ...
Advanced materials 27 (17), 2722-2727, 2015
6082015
Mechanoresponsive self-growing hydrogels inspired by muscle training
T Matsuda, R Kawakami, R Namba, T Nakajima, JP Gong
Science 363 (6426), 504-508, 2019
5742019
Tough physical double-network hydrogels based on amphiphilic triblock copolymers
HJ Zhang, TL Sun, AK Zhang, Y Ikura, T Nakajima, T Nonoyama, ...
Advanced Materials 28 (24), 4884-4890, 2016
4842016
True chemical structure of double network hydrogels
T Nakajima, H Furukawa, Y Tanaka, T Kurokawa, Y Osada, JP Gong
Macromolecules 42 (6), 2184-2189, 2009
3332009
A facile method to fabricate anisotropic hydrogels with perfectly aligned hierarchical fibrous structures
MTI Mredha, YZ Guo, T Nonoyama, T Nakajima, T Kurokawa, JP Gong
Advanced Materials 30 (9), 1704937, 2018
3222018
Double-network hydrogels strongly bondable to bones by spontaneous osteogenesis penetration
T Nonoyama, S Wada, R Kiyama, N Kitamura, MTI Mredha, X Zhang, ...
Advanced Materials 28 (31), 6740-6745, 2016
2472016
Mechano-actuated ultrafast full-colour switching in layered photonic hydrogels
Y Yue, T Kurokawa, MA Haque, T Nakajima, T Nonoyama, X Li, I Kajiwara, ...
Nature communications 5 (1), 4659, 2014
2332014
Characterization of internal fracture process of double network hydrogels under uniaxial elongation
T Nakajima, T Kurokawa, S Ahmed, W Wu, JP Gong
Soft Matter 9 (6), 1955-1966, 2013
2242013
Self-healing behaviors of tough polyampholyte hydrogels
AB Ihsan, TL Sun, T Kurokawa, SN Karobi, T Nakajima, T Nonoyama, ...
Macromolecules 49 (11), 4245-4252, 2016
2172016
A universal molecular stent method to toughen any hydrogels based on double network concept
T Nakajima, H Sato, Y Zhao, S Kawahara, T Kurokawa, K Sugahara, ...
Advanced functional materials 22 (21), 4426-4432, 2012
2102012
Self-adjustable adhesion of polyampholyte hydrogels
CK Roy, HL Guo, TL Sun, A Bin Ihsan, T Kurokawa, M Takahata, ...
Advanced materials 27 (45), 7344-7348, 2015
1832015
Proteoglycans and glycosaminoglycans improve toughness of biocompatible double network hydrogels.
Y Zhao, T Nakajima, JJ Yang, T Kurokawa, J Liu, J Lu, S Mizumoto, ...
Advanced Materials (Deerfield Beach, Fla.) 26 (3), 436-442, 2013
1742013
Importance of entanglement between first and second components in high-strength double network gels
M Huang, H Furukawa, Y Tanaka, T Nakajima, Y Osada, JP Gong
Macromolecules 40 (18), 6658-6664, 2007
1642007
Lamellar hydrogels with high toughness and ternary tunable photonic stop‐band
YF Yue, MA Haque, T Kurokawa, T Nakajima, JP Gong
Advanced materials 25 (22), 3106-3110, 2013
1612013
Energy‐dissipative matrices enable synergistic toughening in fiber reinforced soft composites
Y Huang, DR King, TL Sun, T Nonoyama, T Kurokawa, T Nakajima, ...
Advanced functional materials 27 (9), 1605350, 2017
1492017
Crack blunting and advancing behaviors of tough and self-healing polyampholyte hydrogel
F Luo, TL Sun, T Nakajima, T Kurokawa, Y Zhao, AB Ihsan, HL Guo, XF Li, ...
Macromolecules 47 (17), 6037-6046, 2014
1492014
Phase-separation-induced anomalous stiffening, toughening, and self-healing of polyacrylamide gels
K Sato, T Nakajima, T Hisamatsu, T Nonoyama, T Kurokawa, JP Gong
Advanced Materials 27 (43), 6990-6998, 2015
1482015
Brittle–ductile transition of double network hydrogels: Mechanical balance of two networks as the key factor
S Ahmed, T Nakajima, T Kurokawa, MA Haque, JP Gong
Polymer 55 (3), 914-923, 2014
1472014
Anisotropic tough double network hydrogel from fish collagen and its spontaneous in vivo bonding to bone
MTI Mredha, N Kitamura, T Nonoyama, S Wada, K Goto, X Zhang, ...
Biomaterials 132, 85-95, 2017
1412017
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