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Featured researches published by Shoji Nitta.


Japanese Journal of Applied Physics | 1980

New Evidence for Defect Creation by High Optical Excitation in Glow Discharge Amorphous Silicon

Izumi Hirabayashi; Kazuo Morigaki; Shoji Nitta

New evidence for creation of dangling bonds by high optical excitation at low temperatures is presented through the time-resolved luminescence measurements and ESR measurements in glow discharge amorphous silicon.


Solid State Communications | 1980

Fatigue effect in luminescence of glow discharge amorphous silicon at low temperatures

Kazuo Morigaki; I. Hirabayashi; M. Nakayama; Shoji Nitta; K. Shimakawa

Abstract Fatigue in the luminescence was observed in glow discharge amorphous silicon at 4.2 K and 77 K. This fatigue was not recovered by infra-red illumination, but by heating the sample at higher temperatures. These results are interpreted in terms of enhancement of non-radiative recombination associated with dangling bonds created by high optical excitation.


Journal of Non-crystalline Solids | 2000

Characterization and role of hydrogen in nc-Si:H

Takashi Itoh; K. Yamamoto; K. Ushikoshi; Shuichi Nonomura; Shoji Nitta

Abstract The effects of hydrogen on the properties of polycrystaline (nanometer sized) SiH films (nc-SiH) prepared by plasma enhanced chemical vapor deposition from SiH 4 diluted with H 2 have been studied. In the gas effusion from a sample, three effusion peaks of H 2 are found near 400°C, 500°C and 600°C. The origins of these peaks are assumed to be hydrogen effused from Si–H 2 and Si–H bonds in grain boundaries, and Si–H bonds in amorphous regions, respectively. From a deconvolution of the gas effusion data, the hydrogen density in the grain boundaries is found to decrease with increasing crystalline volume fraction, X c , while that in the amorphous regions is independent of X c . Based on the dependence of the amplitudes Si–H vibrational modes on X c and annealing temperature, the modes near 840 and 2100 cm −1 are related to hydrogen–silicon bonds in grain boundaries. The properties and role of hydrogen in nc-Si:H are discussed.


Applied Physics Letters | 1998

Experimental evidence of photoinduced expansion in hydrogenated amorphous silicon using bending detected optical lever method

Tamihiro Gotoh; Shuichi Nonomura; M. Nishio; Shoji Nitta; Michio Kondo; Akihisa Matsuda

Photoinduced structural change in hydrogenated amorphous silicon (a-Si:H) has been studied by a sensitive bending detection method using an optical lever. We observed that a-Si:H films show not only thermal expansion due to a photothermal effect but also residual and persistent expansion after light soaking. The volume change is recovered by thermal annealing at 200 °C. A dehydrogenated sample annealed at 550 °C and a microcrystalline sample, in which photoinduced defects are not created, show little photoinduced expansion. The photoinduced expansion and photoinduced defect density show identical time evolution. These results suggest that the photoinduced expansion is related to the photoinduced defect creation. A quantitative evaluation of the photoinduced expansion indicates that the photoinduced structural change is spread over several molecular volumes around a photocreated defect.


Applied Surface Science | 1997

Optical and electrical properties of amorphous and microcrystalline GaN films and their application to transparent TFT

Satoshi Kobayashi; Shuichi Nonomura; Takashi Ohmori; K. Abe; Satoshi Hirata; Takahito Uno; Tamihiro Gotoh; Shoji Nitta

Abstract Amorphous and microcrystalline GaN thin films have been made by reactive sputtering. The dark conductivity can be changed largely from 10−11 S/cm of amorphous GaN to 10−3 S/cm of microcrystalline GaN with a crystalline size of 700 A. Photoconductivity and persistent photoconductivity (PPC) are observed above room temperature in these films. And a thin film transistor (TFT) was made by using GaN film and observed the operation as a TFT.


Applied Surface Science | 1997

Preparation and properties of reactive-sputtered amorphous CNx films

Naoyuki Takada; Kenta Arai; Shoji Nitta; Shuichi Nonomura

Abstract We prepared amorphous CNx films by a rf reactive magnetron sputtering using ArN2 mixed gas and a graphite target. The nitrogen-carbon ratio x = N C in films determined by the XPS increased from 0.48 to 0.62 as increasing the nitrogen gas partial pressure ratio r = p N 2 (p N 2 + p Ar ) . Optical energy gap E0 obtained by the Taucs plots increased from 1.4 to 1.6 eV with the nitrogen-carbon ratio x. Dangling bonds density of a-CNx was 1018 to 1019 cm−3 from ESR measurement. Dc conductivity of a-CNx is very small. As irradiated Xe lamp, photoconductivity was observed. The hydrogenation of a-CNx was tried by a hydrogen-plasma treatment.


Journal of Non-crystalline Solids | 1996

Photoconductive a-GaN prepared by reactive sputtering

Shuichi Nonomura; Satoshi Kobayashi; Tamihiro Gotoh; Satoshi Hirata; T. Ohmori; Takashi Itoh; Shoji Nitta; K. Morigaki

Abstract Amorphous and microcrystalline GaN thin films have been made by reactive sputtering. Transparent films of optical gap, E o 5 ∼ 3.95 eV, are obtained and these show semiconductor characteristics. The conductivity changes dramatically from ∼ 10 −11 S/cm to ∼ 10 −3 S/cm on microcrystallization. Photoconductivity is observed in a-GaN. The results of electron spin resonance and sub-gap absorption suggest a low mid-gap defect density of states. It is demonstrated that an amorphous semiconducting material with a large optical gap can be obtained.


Journal of Non-crystalline Solids | 1998

Preparation and properties of photoconductive amorphous carbon nitride a-CNx films : the layer-by-layer method

Shoji Nitta; Naoyuki Takada; K Sugiyama; Takashi Itoh; Shuichi Nonomura

Abstract To improve the photoconductivity of amorphous carbon nitride films a-CNx, hydrogenation was tried. Hydrogenation was not observed in a-CNx film but the improvement of the electronic properties was observed in a few layers of the films. Therefore, to get a better photoconductive a-CNx, the layer-by-layer method was tried with success. Photoconductivity to dark conductivity ratios of a-CNx films, obtained by this layer-by-layer method, were 5×106 on excitation with white light of 100 mW cm−2.


Thin Solid Films | 2001

Preparation of silicon–carbon alloy films by hot-wire CVD and their properties

Takashi Itoh; Yoshiaki Katoh; Takao Fujiwara; Kazunori Fukunaga; Shuichi Nonomura; Shoji Nitta

The capability of hot-wire chemical vapor deposition (HWCVD, Cat-CVD) has been studied for the preparation of silicon–carbon alloy (Si1−xCx) films. The changes in deposition rate, carbon content, optical gap and IR absorption of SiC and CHn are demonstrated for Si1−xCx alloy films deposited with the preparation conditions, gas ratio R=CH4/(SiH4+CH4+H2) from 0.3 to 0.6, and filament temperature from 1750 to 2100°C. A deposition rate over 0.9 nm/s is obtained for all samples. The samples have a heterogeneous structure, consisting of hydrogenated amorphous silicon–carbon alloy (a-Si1−yCy:H) and hydrogenated microcrystalline silicon (μc-Si:H). Impurity doping using B2H6 gas has been tried for the sample with a carbon content of ∼28%. The photoconductivity was measured, and the activation energy for the dark conductivity was 0.17 eV with the doping gas ratio, B2H6/(SiH4+CH4) of ∼0.054%.


Solar Energy Materials | 1982

Optical properties of a-Si:H and a-SixC1−x:H films prepared by glow-discharge deposition☆

Shoji Nitta; S. Itoh; M. Tanaka; T. Endo; A. Hatano

Abstract Effects of hydrogen, annealing, rehydrogenation and doping with P or B of glow-discharge amorphous silicon films on the optical properties are discussed. Definition of optical gap is also discussed. And direct evidence of reconstruction with annealing of films are shown. GDa-Si x C 1−x : H are briefly compared with GDa-Si:H.

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