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Featured researches published by H. Minezaki.


Review of Scientific Instruments | 2010

Bio-Nano ECRIS: an electron cyclotron resonance ion source for new materials production.

Takashi Uchida; H. Minezaki; K. A. Tanaka; M. Muramatsu; Toyohisa Asaji; Y. Kato; A. Kitagawa; S. Biri; Yoshikazu Yoshida

We developed an electron cyclotron resonance ion source (ECRIS) for new materials production on nanoscale. Our main target is the endohedral fullerenes, which have potential in medical care, biotechnology, and nanotechnology. In particular, iron-encapsulated fullerene can be applied as a contrast material for magnetic resonance imaging or microwave heat therapy. Thus, our new ECRIS is named the Bio-Nano ECRIS. In this article, the recent progress of the development of the Bio-Nano ECRIS is reported: (i) iron ion beam production using induction heating oven and (ii) optimization of singly charged C(60) ion beam production.


Review of Scientific Instruments | 2014

Synthesis of endohedral iron-fullerenes by ion implantation

H. Minezaki; S. Ishihara; Takashi Uchida; M. Muramatsu; R. Rácz; T. Asaji; A. Kitagawa; Y. Kato; S. Biri; Yoshikazu Yoshida

In this paper, we discuss the results of our study of the synthesis of endohedral iron-fullerenes. A low energy Fe(+) ion beam was irradiated to C60 thin film by using a deceleration system. Fe(+)-irradiated C60 thin film was analyzed by high performance liquid chromatography and laser desorption/ ionization time-of-flight mass spectrometry. We investigated the performance of the deceleration system for using a Fe(+) beam with low energy. In addition, we attempted to isolate the synthesized material from a Fe(+)-irradiated C60 thin film by high performance liquid chromatography.


Review of Scientific Instruments | 2012

Low energy Fe+ beam irradiation to C60 thin film

H. Minezaki; Kosuke Oshima; Takashi Uchida; M. Muramatsu; Toyohisa Asaji; A. Kitagawa; Y. Kato; S. Biri; Yoshikazu Yoshida

We have developed an electron cyclotron resonance ion source apparatus, which is designed for the production of endohedral fullerene. In this study, we irradiated the Fe(+) beam to the C(60) thin film. We changed the experimental condition of the dose and the ion energy. We could observe the Fe + C(60) peak by analysis of the time-of-flight mass spectrometry. The highest intensity of the Fe + C(60) peak was observed at the ion energy of 200 eV. The Fe + C(60) peak intensity tended to become high in the case of long irradiation time and large dose.


Review of Scientific Instruments | 2014

Status of the Bio-Nano electron cyclotron resonance ion source at Toyo University

Takashi Uchida; H. Minezaki; S. Ishihara; M. Muramatsu; R. Rácz; T. Asaji; A. Kitagawa; Y. Kato; S. Biri; A. G. Drentje; Yoshikazu Yoshida

In the paper, the material science experiments, carried out recently using the Bio-Nano electron cyclotron resonance ion source (ECRIS) at Toyo University, are reported. We have investigated several methods to synthesize endohedral C60 using ion-ion and ion-molecule collision reaction in the ECRIS. Because of the simplicity of the configuration, we can install a large choice of additional equipment in the ECRIS. The Bio-Nano ECRIS is suitable not only to test the materials production but also to test technical developments to improve or understand the performance of an ECRIS.


ION IMPLANTATION TECHNOLOGY 2101: 18th International Conference on Ion Implantation Technology IIT 2010 | 2011

Synthesis of Endohedral Fullerene Using ECR Ion Source

H. Minezaki; Takashi Uchida; K. A. Tanaka; M. Muramatsu; Toyohisa Asaji; A. Kitagawa; Yushi Kato; R. Rácz; S. Biri; Yoshikazu Yoshida

We are developing an ECRIS apparatus which is designed for the production of endohedral fullerenes. Our promising approaches to produce the endohedral fullerenes using the ECRIS are the ion‐ion collision reaction of fullerenes and the other atom in their mixture plasma and simple ion implantation of atom into fullerene layer. In this study, we tried to synthesize the endohedral nitrogen‐fullerenes by ion implantation. N+ beam was irradiated to a fullerene target with a specific energy and dose. As a result, we could observe the peak of N+C60 from targets after N+ beam irradiation with TOF‐SIMS and LDI‐TOF‐MS.


Review of Scientific Instruments | 2014

Fullerene-rare gas mixed plasmas in an electron cyclotron resonance ion source.

T. Asaji; T. Ohba; Takashi Uchida; H. Minezaki; S. Ishihara; R. Rácz; M. Muramatsu; S. Biri; A. Kitagawa; Y. Kato; Yoshikazu Yoshida

A synthesis technology of endohedral fullerenes such as Fe@C60 has developed with an electron cyclotron resonance (ECR) ion source. The production of N@C60 was reported. However, the yield was quite low, since most fullerene molecules were broken in the ECR plasma. We have adopted gas-mixing techniques in order to cool the plasma and then reduce fullerene dissociation. Mass spectra of ion beams extracted from fullerene-He, Ar or Xe mixed plasmas were observed with a Faraday cup. From the results, the He gas mixing technique is effective against fullerene destruction.


Review of Scientific Instruments | 2012

Study on the beam transport from the Bio-Nano ECRIS

Takashi Uchida; H. Minezaki; Kosuke Oshima; R. Rácz; M. Muramatsu; Toyohisa Asaji; A. Kitagawa; Y. Kato; S. Biri; Yoshikazu Yoshida

The beam transport of N(+) ion and C(60)(+) ion in the Bio-Nano ECRIS with min-B configuration was investigated based on the ion beam profiles. The N(+) beam could be focused under the low-beam current conditions. Also the C(60)(+) beam could be focused in spite of the large space-charge effect which will lead the divergence of the beam. We confirmed that our beam transport system works well even for the C(60)(+) ion beam. We estimated the highest C(60)(+) beam current with the focused beam profile by comparing the N(+) ion beam.


Review of Scientific Instruments | 2012

Effect of pulse-modulated microwaves on fullerene ion production with electron cyclotron resonance ion source.

Toyohisa Asaji; Takashi Uchida; H. Minezaki; Kosuke Oshima; R. Rácz; M. Muramatsu; S. Biri; A. Kitagawa; Y. Kato; Yoshikazu Yoshida

Fullerene plasmas generated by pulse-modulated microwaves have been investigated under typical conditions at the Bio-Nano electron cyclotron resonance ion source. The effect of the pulse modulation is distinct from that of simply structured gases, and then the density of the fullerene plasmas increased as decreasing the duty ratio. The density for a pulse width of 10 μs at the period of 100 μs is 1.34 times higher than that for CW mode. We have studied the responses of fullerene and argon plasmas to pulsed microwaves. After the turnoff of microwave power, fullerene plasmas lasted ∼30 times longer than argon plasmas.


Nuclear Instruments & Methods in Physics Research Section B-beam Interactions With Materials and Atoms | 2013

Synthesis of Fe-C60 complex by ion irradiation

H. Minezaki; Kosuke Oshima; Takashi Uchida; Toru Mizuki; R. Rácz; M. Muramatsu; Toyohisa Asaji; A. Kitagawa; Yushi Kato; S. Biri; Yoshikazu Yoshida


The Proceedings of Yamanashi District Conference | 2012

103 Synthesis of endohedral iron-fullerene by iron ion beam irradiation to fullerene thin film

H. Minezaki; Kosuke Oshima; Takashi Uchida; M. Muramatsu; Toyohisa Asaji; Atsushi Kitagawa; Yushi Kato; S. Biri; Yoshikazu Yoshida

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M. Muramatsu

National Institute of Radiological Sciences

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S. Biri

Hungarian Academy of Sciences

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A. Kitagawa

National Institute of Radiological Sciences

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