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Dive into the research topics where Takayuki Kurokawa is active.

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Featured researches published by Takayuki Kurokawa.


Nature Materials | 2013

Physical hydrogels composed of polyampholytes demonstrate high toughness and viscoelasticity

Tao Lin Sun; Takayuki Kurokawa; Shinya Kuroda; Abu Bin Ihsan; Taigo Akasaki; Koshiro Sato; Md. Anamul Haque; Tasuku Nakajima; Jian Ping Gong

Hydrogels attract great attention as biomaterials as a result of their soft and wet nature, similar to that of biological tissues. Recent inventions of several tough hydrogels show their potential as structural biomaterials, such as cartilage. Any given application, however, requires a combination of mechanical properties including stiffness, strength, toughness, damping, fatigue resistance and self-healing, along with biocompatibility. This combination is rarely realized. Here, we report that polyampholytes, polymers bearing randomly dispersed cationic and anionic repeat groups, form tough and viscoelastic hydrogels with multiple mechanical properties. The randomness makes ionic bonds of a wide distribution of strength. The strong bonds serve as permanent crosslinks, imparting elasticity, whereas the weak bonds reversibly break and re-form, dissipating energy. These physical hydrogels of supramolecular structure can be tuned to change multiple mechanical properties over wide ranges by using diverse ionic combinations. This polyampholyte approach is synthetically simple and dramatically increases the choice of tough hydrogels for applications.


Advanced Materials | 2015

Oppositely Charged Polyelectrolytes Form Tough, Self‐Healing, and Rebuildable Hydrogels

Feng Luo; Tao Lin Sun; Tasuku Nakajima; Takayuki Kurokawa; Yu Zhao; Koshiro Sato; Abu Bin Ihsan; Xufeng Li; Honglei Guo; Jian Ping Gong

A series of tough polyion complex hydrogels is synthesized by sequential homopolymerization of cationic and anionic monomers. Owing to the reversible interpolymer ionic bonding, the materials are self-healable under ambient conditions with the aid of saline solution. Furthermore, self-glued bulk hydrogels can be built from their microgels, which is promising for 3D/4D printing and the additive manufacturing of hydrogels.


Advanced Materials | 2010

Unidirectional Alignment of Lamellar Bilayer in Hydrogel: One-Dimensional Swelling, Anisotropic Modulus, and Stress/Strain Tunable Structural Color

Md. Anamul Haque; Gen Kamita; Takayuki Kurokawa; Kaoru Tsujii; Jian Ping Gong

[∗] Dr. T. Kurokawa , Prof. J. P. Gong Faculty of Advanced Life Science Graduate School of Science Hokkaido University Sapporo, 060–0810 (Japan) E-mail: [email protected] Dr. T. Kurokawa Creative Research Initiative Sousei Hokkaido University Sapporo, 001–0021 (Japan) M. A. Haque , G. Kamita Division of Biological Sciences Graduate School of Science Hokkaido University Sapporo, 060–0810 (Japan) Prof. K. Tsujii , Nanotechnology Research Center Research Institute for Electronic Science Hokkaido University (Retired) Sapporo, 001–0021 (Japan)


Nature Communications | 2014

Mechano-actuated ultrafast full-colour switching in layered photonic hydrogels

Youfeng Yue; Takayuki Kurokawa; Anamul Haque; Tasuku Nakajima; Takayuki Nonoyama; Xufeng Li; Itsuro Kajiwara; Jian Ping Gong

Photonic crystals with tunability in the visible region are of great interest for controlling light diffraction. Mechanochromic photonic materials are periodically structured soft materials designed with a photonic stop-band that can be tuned by mechanical forces to reflect specific colours. Soft photonic materials with broad colour tunability and fast colour switching are invaluable for application. Here we report a novel mechano-actuated, soft photonic hydrogel that has an ultrafast-response time, full-colour tunable range, high spatial resolution and can be actuated by a very small compressive stress. In addition, the material has excellent mechanical stability and the colour can be reversibly switched at high frequency more than 10,000 times without degradation. This material can be used in optical devices, such as full-colour display and sensors to visualize the time evolution of complicated stress/strain fields, for example, generated during the motion of biological cells.


Soft Matter | 2013

Characterization of internal fracture process of double network hydrogels under uniaxial elongation

Tasuku Nakajima; Takayuki Kurokawa; Saika Ahmed; Wen-Li Wu; Jian Ping Gong

Previously we revealed that the high toughness of double network hydrogels (DN gels) derives from the internal fracture of the brittle network during deformation, which dissipates energy as sacrificial bonds. In this study, we intend to elucidate the detailed internal fracture process of DN gels. We quantitatively analysed the tensile hysteresis and re-swelling behaviour of a DN gel that shows a well-defined necking and strain hardening, and obtained the following new findings: (1) fracture of the 1st network PAMPS starts far below the yielding strain, and 90% of the initially load-bearing PAMPS chains already break at the necking point. (2) The dominant internal fracture process occurs in the necking and hardening region, although the softening mainly occurs before necking. (3) The internal fracture efficiency is very high, 85% of the work is used for the internal fracture and 9% of all PAMPS chains break at sample failure. (4) The internal fracture is anisotropic, fracture occurs perpendicular to the tensile direction, in preference to the other two directions, but the fracture anisotropy decreases in the hardening region. Results (1) and (2) are in agreement with a hierarchical structural model of the PAMPS network. Based on these findings, we present a revised description of the fracture process of DN gels.


Advanced Materials | 2016

Tough Physical Double-Network Hydrogels Based on Amphiphilic Triblock Copolymers

Hui Jie Zhang; Tao Lin Sun; Ao Kai Zhang; Yumihiko Ikura; Tasuku Nakajima; Takayuki Nonoyama; Takayuki Kurokawa; Osamu Ito; Hiroyuki Ishitobi; Jian Ping Gong

A series of physical double-network hydrogels is synthesized based on an amphiphilic triblock copolymer. The gel, which contains strong hydrophobic domains and sacrificial dynamic bonds of hydrogen bonds, is stiff and tough, and even stiffens in concentrated saline solution. Furthermore, due to its supramolecular structure, the gel features improved self-healing and self-recovery abilities.


Advanced Materials | 2014

Proteoglycans and Glycosaminoglycans Improve Toughness of Biocompatible Double Network Hydrogels

Yu Zhao; Tasuku Nakajima; Jing Jing Yang; Takayuki Kurokawa; Jian Liu; Jishun Lu; Shuji Mizumoto; Kazuyuki Sugahara; Nobuto Kitamura; Kazunori Yasuda; A. U. Daniels; Jian Ping Gong

Based on the molecular stent concept, a series of tough double-network hydrogels (St-DN gels) made from the components of proteoglycan aggregates - chondroitin sulfate proteoglycans (1), chondroitin sulfate (2), and sodium hyaluronate (3) - are successfully developed in combination with a neutral biocompatible polymer. This work demonstrates a promising method to create biopolymer-based tough hydrogels for biomedical applications.


Advanced Materials | 2013

Lamellar Hydrogels with High Toughness and Ternary Tunable Photonic Stop-Band

You Feng Yue; M. Anamul Haque; Takayuki Kurokawa; Tasuku Nakajima; Jian Ping Gong

A lamellar hydrogel with high toughness, exhibiting ternary stimuli-responsive structural color changes has been synthesized. The gel consists of alternating hard layers of a polymeric surfactant (PDGI) and soft layers of interpenetrating networks of poly(acrylamide)-poly(acrylic acid). Reversible, wide range switching of the stop-band position was achieved using different external stimuli of temperature, pH, and stress/strain.


Polymer Chemistry | 2011

Robust bonding and one-step facile synthesis of tough hydrogels with desirable shape by virtue of the double network structure

Junji Saito; Hidemitsu Furukawa; Takayuki Kurokawa; Rikimaru Kuwabara; Shinya Kuroda; Jian Hu; Yoshimi Tanaka; Jian Ping Gong; Nobuto Kitamura; Kazunori Yasuda

Robust bonding of a hydrogel in aqueous environment, either to another hydrogel or to a solid, is one of the major unsolved issues for the practical applications of hydrogels in various fields. Here we report robust bonding between a pair of hydrogel sheets, containing over 90 wt% of water, by applying the double-network (DN) structure. In the optimal condition, the peeling energy of the united gel sheets reaches 1200 J m−2, which is comparable to the bulk fracture energy of a normal type of tough DN gels. This hydrogel bonding technique is also applied to form tough bonding between hydrogel and plastic plates. Furthermore, based on this technique, we have developed a facile method to synthesize robust double network hydrogels with any desirable free-shape from micro-gel precursors. These novel techniques will substantially merit the applications of the tough hydrogels in various fields, such as an artificial meniscus.


Advanced Materials | 2016

Double-Network Hydrogels Strongly Bondable to Bones by Spontaneous Osteogenesis Penetration

Takayuki Nonoyama; Susumu Wada; Ryuji Kiyama; Nobuto Kitamura; Md. Tariful Islam Mredha; Xi Zhang; Takayuki Kurokawa; Tasuku Nakajima; Yasuaki Takagi; Kazunori Yasuda; Jian Ping Gong

On implanting hydroxyapatite-mineralized tough hydrogel into osteochondral defects of rabbits, osteogenesis spontaneously penetrates into the gel matrix owing to the semi-permeablility of the hydrogel. The gradient layer (around 40 μm thick) contributes quite strong bonding of the gel to bone. This is the first success in realizing the robust osteointegration of tough hydrogels, and the method is simple and feasible for practical use.

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