Yunosuke Abe
Niigata University
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Featured researches published by Yunosuke Abe.
Journal of the American Chemical Society | 2013
Lijia Liu; Takeshi Namikoshi; Yu Zang; Toshiki Aoki; Shingo Hadano; Yunosuke Abe; Ikuya Wasuzu; Toyokazu Tsutsuba; Masahiro Teraguchi; Takashi Kaneko
A novel, highly selective photocyclic aromatization (SCAT) of π-conjugated polymers from phenylacetylene having two hydroxyl groups to exclusively yield a 1,3,5-trisubstituted benzene derivative was developed, and its success was confirmed by (1)H NMR, GPC, and TOF-MS. The SCAT reaction has many unique characteristics. (1) It is a quantitative reaction: it gave only the corresponding cyclic trimer, i.e., a 1,3,5-trisubstituted benzene derivative, quantitatively (100%). No byproducts were produced under the best conditions. (2) It is an intramolecular reaction: it occurred between three adjacent monomer units in one macromolecule. (3) It is a stereospecific and topochemical or template reaction: the reactivity strongly depended on the configuration and conformation of the starting polymer substrates. (4) It is a photoreaction: high selectivity (100%) was observed only by the use of visible light irradiation, not by heating. (5) It is a solid-state reaction: high selectivity (100%) was observed only in the solid state, not in solution. In addition, (6) the resulting cyclic trimers could form a self-supporting membrane, despite their low molecular weights. This new approach resulted in a new class of supramolecular polymers consisting of a 1,3,5-trisubstituted benzene derivative, numbers of which were linearly linked by hydrogen bonds and stacked benzene derivatives. Since SCAT has such high selectivities and is useful for the preparation of a self-supporting supramolecular polymer membrane, many applications can be expected.
Molecules | 2012
Yunosuke Abe; Toshiki Aoki; Hongge Jia; Shingo Hadano; Takeshi Namikoshi; Yuriko Kakihana; Lijia Liu; Yu Zang; Masahiro Teraguchi; Takashi Kaneko
A soluble and stable one-handed helical poly(substituted phenylacetylene) without the coexistence of any other chiral moieties was successfully synthesized by asymmetric-induced polymerization of a chiral monomer followed by two-step polymer reactions in membrane state: (1) removing the chiral groups (desubstitution); and (2) introduction of achiral long alkyl groups at the same position as the desubstitution to enhance the solubility of the resulting one-handed helical polymer (resubstitution). The starting chiral monomer should have four characteristic substituents: (i) a chiral group bonded to an easily hydrolyzed spacer group; (ii) two hydroxyl groups; (iii) a long rigid hydrophobic spacer between the chiral group and the polymerizing group; (iv) a long achiral group near the chiral group. As spacer group a carbonate ester was selected. The two hydroxyl groups formed intramolecular hydrogen bonds stabilizing a one-handed helical structure in solution before and after the two-step polymer reactions in membrane state. The rigid long hydrophobic spacer, a phenylethynylphenyl group, enhanced the solubility of the starting polymer, and realized effective chiral induction from the chiral side groups to the main chain in the asymmetric-induced polymerization. The long alkyl group near the chiral group avoided shrinkage of the membrane and kept the reactivity of resubstitution in membrane state after removing the chiral groups. The g value (g = ([θ]/3,300)/ε) for the CD signal assigned to the main chain in the obtained final polymer was almost the same as that of the starting polymer in spite of the absence of any other chiral moieties. Moreover, since the one-handed helical structure was maintained by the intramolecular hydrogen bonds in a solution, direct observation of the one-handed helicity of the final homopolymer has been realized in CD for the solution for the first time.
Journal of Polymer Science Part A | 2009
Hongge Jia; Masahiro Teraguchi; Toshiki Aoki; Yunosuke Abe; Takashi Kaneko; Shingo Hadano; Takeshi Namikoshi; Edy Marwanta
Macromolecules | 2010
Hongge Jia; Masahiro Teraguchi; Toshiki Aoki; Yunosuke Abe; Takashi Kaneko; Shingo Hadano; Takeshi Namikoshi; Tomoyuki Ohishi
Chemical Communications | 2012
Yu Zang; Toshiki Aoki; Lijia Liu; Yunosuke Abe; Yuriko Kakihana; Masahiro Teraguchi; Takashi Kaneko
Macromolecular Chemistry and Physics | 2015
Lijia Liu; Qing Long; Toshiki Aoki; Takeshi Namikoshi; Yunosuke Abe; Mari Miyata; Masahiro Teraguchi; Takashi Kaneko; Yudan Wang; Chunhong Zhang
Polymer | 2013
Mari Miyata; Takeshi Namikoshi; Lijia Liu; Yu Zang; Toshiki Aoki; Yunosuke Abe; Yoshiyuki Oniyama; Toyokazu Tsutsuba; Masahiro Teraguchi; Takashi Kaneko
Polymer | 2012
Yunosuke Abe; Toshiki Aoki; Hongge Jia; Shingo Hadano; Takeshi Namikoshi; Yuriko Kakihana; Lijia Liu; Yu Zang; Masahiro Teraguchi; Takashi Kaneko
Chemistry Letters | 2012
Yunosuke Abe; Toshiki Aoki; Hongge Jia; Shingo Hadano; Takeshi Namikoshi; Yuriko Kakihana; Lijia Liu; Yu Zang; Masahiro Teraguchi; Takashi Kaneko
Macromolecular Chemistry and Physics | 2011
Lijia Liu; Qing Long; Toshiki Aoki; Takeshi Namikoshi; Yunosuke Abe; Mari Miyata; Masahiro Teraguchi; Takashi Kaneko; Yudan Wang; Chunhong Zhang