• Title/Summary/Keyword: Ion shower Doping

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Fabrication of excimer laser annealed poly-si thin film transistor by using an elevated temperature ion shower doping

  • Park, Seung-Chul;Jeon, Duk-Young
    • Electrical & Electronic Materials
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    • v.11 no.11
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    • pp.22-27
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    • 1998
  • We have investigated the effect of an ion shower doping of the laser annealed poly-Si films at an elevated substrate temperatures. The substrate temperature was varied from room temperature to 300$^{\circ}C$ when the poly-Si film was doped with phosphorus by a non-mass-separated ion shower. Optical, structural, and electrical characterizations have been performed in order to study the effect of the ion showering doping. The sheet resistance of the doped poly-Si films was decreased from7${\times}$106 $\Omega$/$\square$ to 700 $\Omega$/$\square$ when the substrate temperature was increased from room temperature to 300$^{\circ}C$. This low sheet resistance is due to the fact that the doped film doesn't become amorphous but remains in the polycrystalline phase. The mildly elevated substrate temperature appears to reduce ion damages incurred in poly-Si films during ion-shower doping. Using the ion-shower doping at 250$^{\circ}C$, the field effect mobility of 120 $\textrm{cm}^2$/(v$.$s) has been obtained for the n-channel poly-Si TFTs.

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Low temperature pulsed ion shower doping for poly-Si TFT on plastic

  • Kim, Jong-Man;Hong, Wan-Shick;Kim, Do-Young;Jung, Ji-Sim;Kwon, Jang-Yeon;Noguchi, Takashi
    • 한국정보디스플레이학회:학술대회논문집
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    • 2004.08a
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    • pp.95-97
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    • 2004
  • We studied a low temperature ion doping process for poly-Si Thin Film Transistor (TFT) on plastic substrates. The ion doping process was performed using an ion shower system, and subsequently, excimer laser annealing (ELA) was done for the activation. We have studied the crystallinity of Si surface at each step using UV-reflectance spectroscopy and the sheet resistance using 4-point probe. We found that the temperature has increased during ion shower doping for a-Si film and the activation has not been fulfilled stably because of the thermal damage against the plastic substrate. By trying newly a pulsed ion shower doping, the ion was efficiently incorporated into the a-Si film on plastic substrate. The sheet resistance decreased with the increase of the pulsed doping time, which was corresponded to the incorporated dose. Also we confirmed a relationship between the crystallinity and the sheet resistance. A sheet resistance of 300 ${\Omega}$/sq for the Si film of 50nm thickness was obtained with a good reproducibility. The ion shower technique is a promising doping technique for ultra low temperature poly-Si TFTs on plastic substrates as well as those on glass substrates.

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Dopant-Activation and Damage-Recovery of Ion-Shower-Doped Poly-Si through $PH_3/H_2$ after Furnace Annealing

  • Kim, Dong-Min;Kim, Dae-Sup;Ro, Jae-Sang;Choi, Kyu-Hwan;Lee, Ki-Yong
    • Journal of Information Display
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    • v.5 no.1
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    • pp.1-6
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    • 2004
  • Ion shower doping with a main ion source of $P_2H_x$ using a source gas mixture of $PH_3/H_2$ was conducted on excimer-laser- annealed (ELA) poly-Si. The crystallinity of the as-implanted samples was measured using a UV-transmittance. The measured value of as-implanted damage was found to correlate well with the one calculated through/obtained from TRIM-code simulation. The sheet resistance was found to decrease as the acceleration voltage increased from 1 kV to 15 kV at a doping time of 1 min. However, it increases as the acceleration voltage increases under severe doping conditions. Uncured damage after furnace annealing is responsible for the rise in sheet resistance.

Reverse annealing of $P^+/B^+$ ion shower doped poly-Si

  • Jin, Beop-Jong;Hong, Won-Eui;Ro, Jae-Sang
    • 한국정보디스플레이학회:학술대회논문집
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    • 2006.08a
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    • pp.752-755
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    • 2006
  • Reverse annealing was observed in $P^+/B^+$ ion shower doped poly-Si upon activation annealing. Phosphorous or boron was implanted by ion shower doping using a source gas mixture of $PH_3/H_2$ or $B_2H_6/H_2$. Activation annealing was conducted using a tube furnace in the temperature ranges from $350^{\circ}C$ to $650^{\circ}C$. Hall measurement revealed that reverse annealing begins at different annealing temperatures for poly-Si implanted with P and B, respectively. It was observed that reverse annealing starts at $550^{\circ}C$$ in $P^+$ ion shower doped poly-Si, while at $350^{\circ}C$ in the case of B-doping.

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A Study on Ion Shower Doping in Si Thin Film (이온 도핑 방법에 의한 실리콘 박막의 도핑 연구)

  • Yoo, Soon-Sung;Jun, Jung-Mok;Lee, Kyung-Ha;Moon, Byeong-Yeon;Jang, Jin
    • Journal of the Korean Institute of Telematics and Electronics A
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    • v.31A no.5
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    • pp.106-112
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    • 1994
  • We have developed a large area ion shower doping system with an RF plasma ion source. The ion current density (i.e., doping concentration) increases with RF power and acceleration voltage. Using this technique, we investigated the optimum condition for ion doping of phosphorus in a-Si:H and poly-Si films. The optimum acceleration voltage and doping time are 6KV and 90sec, respectively, in a-Si:H films. Under this condition the electrical conductivity of ion-doped a-Si:H film is obtained ~10$^{-3}$/cm at room temperature. The sheet resistance decreases witnh acceleration voltage in ion-doped poly-Si, and a heavily-doped layer with a sheet resistance of 920$\Omega$/ㅁ is obtained by using ion doping and subsequent activation.

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The Effect of Annealing Methods on Dopant Activation and Damage Recovery of Phosphorous ion Shower Doped Poly-Si (다결정 실리콘 박막 위에 P이온 샤워 도핑 후 열처리 방법에 따르는 도펀트 활성화 및 결함 회복에 관한 효과)

  • Kim, Dong-Min;Ro, Jae-Sang;Lee, Ki-Yong
    • Journal of the Korean Electrochemical Society
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    • v.8 no.1
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    • pp.24-31
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    • 2005
  • Ion shower doping with a main ion source of $P_2H_x$ using a source gas mixture of $PH_3/H_2$ was conducted on excimer-laser-annealed (ELA) poly-Si.The crystallinity of the as-implanted samples was measured using a UV-transmittance. The measured value using UV-transmittance was found to correlate well with the one measured using Raman Spectroscopy. The sheet resistance decreases as the acceleration voltage increases from 1kV to 15kV at the moderate doping conditions. It, however, increases as the acceleration voltage increases under the severe doping conditions. The reduction in carrier concentration due to electron trapping at uncured damage after activation annealing seems to be responsible for the rise in sheet resistance. Three different annealing methods were investigated in terms of dopant-activation and damage-recovery, such as furnace annealing, excimer laser annealing, and rapid thermal annealing, respectively.

Fabrication of self aligned APCVD A-Si TFT by using ion shower doping method (이온 샤우어 도핑을 이용한 자기정렬방식의 APCVD 비정질 실리콘 박막 트랜지스터의 제작)

  • Moon, Byeong-Yeon;Lee, Kyung-Ha;Jung, You-Chan;Yoo, Jae-Ho;Lee, Seung-Min;Jang, Jin
    • Journal of the Korean Institute of Telematics and Electronics A
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    • v.32A no.1
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    • pp.146-151
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    • 1995
  • We have studied the fabrication self aligned atmospheric pressure(AP) CVD a-Si thin film transistor with source-drain ohmic contact by using ion shower doping method. The conductivity is 6*10$^{-2}$S/cm when the acceleration voltage, doping time and doping temperature are 6kV, 90s and 350.deg. C, respectively. We obtained the field effect mobility of 1.3cm$^{2}$/Vs and the threshold voltage of 7V.

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Ion Shower Doping Effect in Diamond and Diamond-Like Carbon Films

  • Jin Jang;Chun, Soo-Chul;Park, Kyu-Chang;Kim, Jea-Gak;Moon, Jong-Hyun;Park, Jong-Hyun;Song, Kyo-Jun;Lee, Seung-Min;Oh, Myung-Hwan
    • Journal of the Korean Vacuum Society
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    • v.4 no.S2
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    • pp.34-39
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    • 1995
  • we have studied the possibility of n-type doping in diamond and DLC films. After ion doping of either p-type or n-type, the electrical conductivities were remarkably increased and conductivity activation energies were decreased. The Raman intensity at 1330 cm-1 decreases slightly by ion doping of $7.2\times 10^{16}\; \textrm{cm}^{-2}$. The increase in conductivity by ion doping appears to be arised from the combined effects by substitutional doping and graphitization by ion damage.

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