理工学部

Horikoshi Satoshi

  (堀越 智)

Profile Information

Affiliation
Professor, Faculty of Science and Technology, Department of Materials and Life Sciences, Sophia University
Degree
学士(化学)(明星大学)
修士(化学)(明星大学)
博士(化学)(明星大学)

Contact information
horikosisophia.ac.jp
Researcher number
50424784
J-GLOBAL ID
201201099074346669
researchmap Member ID
7000000334

(Subject of research)
Development of the environmental treatment by microwave novel photocatalyst method
Development of the water treatments method using the microwave electrodeless discharged lamp
Novel synthesis of nanoparticle with a hybrid microwave and micro-reactor method
The elucidation of a microwave magnetic field effect
Development of the activated carbon / zeolite composite material which aimed at radioactive material adsorption
Investigation of the microwave in the biochemistry field
Photo organic synthesis using a photocatalyst
Fixation of CO2 using a photocatalyst


Papers

 242
  • Miki Takizawa, Takahiro Yamane, Akinobu Matsumoto, Takashi Miyazawa, Satoshi Horikoshi
    Molecules, 31(7) 1068-1068, Mar 24, 2026  Peer-reviewedInvitedCorresponding author
    The development of sustainable and environmentally benign N-methylation methodologies is essential for enhancing sustainable synthetic practice in pharmaceutical manufacturing. In this study, we demonstrate that microwave heating (MWH) markedly enhanced the efficiency of cobalt-catalyzed N-methylation using methanol or methanol-d4 as green C1 sources. Compared with conventional heating (CH), MWH enabled highly efficient syntheses of key pharmaceutical intermediates—including 6-dimethylamino-1-hexanol, imipramine hydrochloride, and butenafine hydrochloride—under milder conditions and shorter reaction times and without generating hazardous halogen-containing waste. UV–vis spectroscopic analysis revealed that MWH accelerated the transformation of Co(acac)2 into catalytically active Co species by approximately four-fold, providing a mechanistic basis for the enhanced reactivity. We hypothesized that this effect was caused by the selective microwave heating of the catalyst, which in turn promoted the rapid generation of catalytically active species. Notably, MWH also significantly improved the N-trideuteromethylation of amines using methanol-d4, achieving a 95% yield for imipramine-d3 hydrochloride versus 32% under CH. Molecular dynamics simulations indicated that methanol-d4 exhibited slower dipole relaxation and enhanced cluster fragmentation under microwave fields, improving catalyst–substrate contact, while kinetic isotope effects stabilized reactive intermediates. These synergistic effects account for the pronounced microwave promotion observed in deuterated systems. Overall, the combination of MWH and cobalt catalysis offers an energy-efficient, waste-minimizing, and environmentally benign strategy for the scalable synthesis of both methylated and deuterated amines.
  • J. Jpn. Air Cleaning Assoc, 63(5) 323-331, Dec, 2025  Peer-reviewedInvitedLead author
  • Journal of oleo science, 74 1047-1055, Oct, 2025  Peer-reviewedLead authorCorresponding author
  • Satoshi Horikoshi, Kanon Hirota, Nick Serpone
    Molecules, 30(19) 3951-3951, Oct 1, 2025  Peer-reviewedInvitedLead authorCorresponding author
    This study addresses challenges in recycling electronic waste (e-waste) by developing a self-degrading electrical wire coating material using graphitic carbon nitride (g-C3N4). Two types, melamine-derived carbon nitride (MCN) and urea-derived carbon nitride (UCN), were synthesized and evaluated for their photocatalytic activity by measuring the decolorization rate of rhodamine-B (RhB). UCN demonstrated superior photocatalytic performance compared to the widely used TiO2. When incorporated into PVC film, UCN achieved a maximum weight loss of 68% in photodegradation tests after 40 days of irradiation, contributing to reduced environmental impact. A UCN-mixed coating for a vinyl-insulated cable prototype showed that photodecomposition in water facilitated copper wire separation. The study also indicated that water is vital for the decomposition process, while UCN enhanced stiffness and tensile strength of the material without compromising elongation and electrical insulation properties.
  • 堀越 智
    日本接着学会誌, 61 185-191, Aug, 2025  Peer-reviewedInvitedLead authorCorresponding author

Misc.

 55

Books and Other Publications

 46

Presentations

 508

Teaching Experience

 8

Research Projects

 30

Media Coverage

 57

Other

 59