• Title/Summary/Keyword: Co-silicidation

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Study of Ni-germano Silicide Thermal Stability for Nano-scale CMOS Technology (Nano-scale CMOS를 위한 Ni-germano Silicide의 열 안정성 연구)

  • Huang, Bin-Feng;Oh, Soon-Young;Yun, Jang-Gn;Kim, Yong-Jin;Ji, Hee-Hwan;Kim, Yong-Goo;Wang, Jin-Suk;Lee, Hi-Deok
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.17 no.11
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    • pp.1149-1155
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    • 2004
  • In this paper, novel methods for improvement of thermal stability of Ni-germano Silicide were proposed for nano CMOS applications. It was shown that there happened agglomeration and abnormal oxidation in case of Ni-germano Silicide using Ni only structure. Therefore, 4 kinds of tri-layer structure, such as, Ti/Ni/TiN, Ni/Ti/TiN, Co/Ni/TiN and Ni/Co/TiN were proposed utilizing Co and Ti interlayer to improve thermal stability of Ni-germano Silicide. Ti/Ni/TiN structure showed the best improvement of thermal stability and suppression of abnormal oxidation although all kinds of structures showed improvement of sheet resistance. That is, Ti/Ni/TiN structure showed only 11 ohm/sq. in spite of 600 $^{\circ}C$, 30 min post silicidation annealing while Ni-only structure show 42 ohm/sq. Therefore, Ti/Ni/TiN structure is highly promising for nano-scale CMOS technology.

Thermal Stability Improvement of Ni Germanosilicide using Ni-Ta alloy for Nano-scale CMOS Technology (Nano-scale CMOS에 적용하기 위한 Ni-Ta 합금을 이용한 Ni-Germanosilicide의 열안정성 개선)

  • Kim, Yong-Jin;Oh, Soon-Young;Yun, Jang-Gn;Lee, Won-Jae;Agchbayar, Tuya;Ji, Hee-Hwan;Kim, Do-Woo;Heo, Sang-Bum;Cha, Han-Seob;Kim, Young-Chul;Lee, Hi-Deok;Wang, Jin-Suk
    • Proceedings of the IEEK Conference
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    • 2005.11a
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    • pp.607-610
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    • 2005
  • In this paper, Ni Germanosilicide using Ni-Ta/Co/TiN is proposed to improve thermal stability. The sheet resistance of Ni Germanosilicide utilizing pure Ni increased dramatically after the post-silicidation annealing at $600^{\circ}C$ for 30min. However, using the proposed Ni-Ta/Co/TiN structure, low temperature silicidation and wide range of RTP process window were achieved.

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Thermal Stability Improvement or Ni Germanosilicide Using NiPt/Co/TiN and the Effect of Ge Fraction (x) in $Si_{l-x}Ge_x$ (NiPt/Co/TiN을 이용한 Ni Germanosilicide 의 열안정성 향상 및 Ge 비율 (x) 에 따른 특성 분석)

  • Yun Jang-Gn;Oh Soon-Young;Huang Bin-Feng;Kim Yong-Jin;Ji Hee-Hwan;Kim Yong-Goo;Cha Han-Seob;Heo Sang-Bum;Lee Jeong-Gun;Wang Jin-Suk;Lee Hi-Deok
    • Proceedings of the IEEK Conference
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    • 2004.06b
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    • pp.391-394
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    • 2004
  • In this study, highly thermal stable Ni Germanosilicide has been utilized using NiPt alloy and novel NiPt/Co/TiN tri-layer. And, the Ni Germanosilicide Properties were characterized according to different Ge ratio (x) in $Si_{l-x}Ge_x$ for the next generation CMOS application. The sheet resistance of Ni Germanosilicide utilizing pure-Ni increased dramatically after the post-silicidation annealing at $600^{\circ}C$ for 30 min. Moreover, more degradation was found as the Ge fraction increases. However, using the proposed NiPt/Co/TiN tri-layer, low temperature silicidation and wide range of RTP process window were achieved as well as the improvement of the thermal stability according to different Ge fractions by the subsequent Co and TiN capping layer above NiPt on the $Si_{l-x}Ge_x$. Therefore, highly thermal immune Ni Germanosilicide up to $600^{\circ}C$ for 30 min is utilized using the NiPt/Co/TiN tri-layer promising for future SiGe based ULSI technology.

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Silicidation Reaction Stability with Natural Oxides in Cobalt Nickel Composite Silicide Process (자연산화막 존재에 따른 코발트 니켈 복합실리사이드 공정의 안정성)

  • Song, Oh-Sung;Kim, Sang-Yeob;Kim, Jong-Ryul
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.8 no.1
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    • pp.25-32
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    • 2007
  • We investigated the silicide reaction stability between 10 nm-Col-xNix alloy films and silicon substrates with the existence of 4 nm-thick natural oxide layers. We thermally evaporated 10 nm-Col-xNix alloy films by varying $x=0.1{\sim}0.9$ on naturally oxidized single crystal and 70 nm-thick polycrystalline silicon substrates. The films structures were annealed by rapid thermal annealing (RTA) from $600^{\circ}C$ to $1100^{\circ}C$ for 40 seconds with the purpose of silicidation. After the removal of residual metallic residue with sulfuric acid, the sheet resistance, microstructure, composition, and surface roughness were investigated using a four-point probe, a field emission scanning electron microscope, a field ion bean4 an X-ray diffractometer, and an Auger electron depth profiling spectroscope, respectively, to confirm the silicide reaction. The residual stress of silicon substrate was also analyzed using a micro-Raman spectrometer We report that the silicide reaction does not occur if natural oxides are present. Metallic oxide residues may be present on a polysilicon substrate at high silicidation temperatures. Huge residual stress is possible on a single crystal silicon substrate at high temperature, and these may result in micro-pinholes. Our results imply that the natural oxide layer removal process is of importance to ensure the successful completion of the silicide process with CoNi alloy films.

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Sheet Resistance and Microstructure Evolution of Cobalt/Nickel Silicides with Annealing Temperature (코발트/니켈 복합실리사이드의 실리사이드온도에 따른 면저항과 미세구조 변화)

  • Jung Young-soon;Cheong Seong-hwee;Song Oh-sung
    • Korean Journal of Materials Research
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    • v.14 no.6
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    • pp.389-393
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    • 2004
  • The silicide layer used as a diffusion barrier in microelectronics is typically required to be below 50 nm-thick and, the same time, the silicides also need to have low contact resistance without agglomeration at high processing temperatures. We fabricated Si(100)/15 nm-Ni/15 nm-Co samples with a thermal evaporator, and annealed the samples for 40 seconds at temperatures ranging from $700^{\circ}C$ to $1100^{\circ}C$ using rapid thermal annealing. We investigated microstructural and compositional changes during annealing using transmission electron microscopy and auger electron spectroscopy. Sheet resistance of the annealed sample stack was measured with a four point probe. The sheet resistance measurements for our proposed Co/Ni composite silicide was below 8 $\Omega$/sq. even after annealing $1100^{\circ}C$, while conventional nickel-monosilicide showed abrupt phase transformation at $700^{\circ}C$. Microstructure and auger depth profiling showed that the silicides in our sample consisted of intermixed phases of $CoNiSi_{x}$ and NiSi. It was noticed that NiSi grew rapidly at the silicon interface with increasing annealing temperature without transforming into $NiSi_2$. Our results imply that Co/Ni composite silicide should have excellent high temperature stability even in post-silicidation processes.

A Consideration of Void Formation Mechanism at Gate Edge Induced by Cobalt Silicidation (코발트 실리사이드에 의한 게이트 측벽 기공 형성에 대한 고찰)

  • 김영철;김기영;김병국
    • Korean Journal of Crystallography
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    • v.12 no.3
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    • pp.166-170
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    • 2001
  • Dopants implanted in silicon substrate affect the reaction between cobalt and silicon substrate. Phosphorous, unlike boron and arsenic, suppressing the reaction between cobalt and silicon induces CoSi formation during a low temperature thermal treatment instead of CoSi₂formation. The CoSi layer should move to the silicon substrate to fill the vacant volume that is generated in the silicon substrate due to the silicon out-diffusion into the cobalt/CoSi interface. The movement of CoSi at gate sidewall spacer region is suppressed by a cohesion between gate oxide and CoSi layers, resulting in a void formation at the gate sidewall spacer edge.

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Study on Property Variations of $CoSi_2$ Electrode with Its Preparation Methods ($CoSi_2$ 전극 구조의 증착법에 따른 특성 변화 연구)

  • Nam, Hyoung-Gin
    • Journal of the Semiconductor & Display Technology
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    • v.6 no.4
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    • pp.5-9
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    • 2007
  • Phase transition and dopant redistribution during silicidation of $CoSi_2$ thin films were characterized depending on their preparation methods. Our results indicated that cleanness of the substrate surface played an important role in the formation of the final phase. This effect was found to be reduced by addition of W resulting in the formation of $CoSi_2$. However, even in this case, the formation of the final phase was achieved at the cost of extra thermal energy, which induced rough interface between the substrate and the silicide film. As for the dopant redistribution, the deposition sequence of Co and Si on SiGe was observed to induce significant differences in the dopant profiles. It was found that co-deposition of Co and Si resulted in the least redistribution of dopants thus maintaining the original dopant profile.

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Micro-pinholes in Composite Cobalt Nickel Silicides (코발트 니켈 합금 구조에서 생성된 실리사이드의 마이크로 핀홀의 발생)

  • Song, Oh-Sung;Kim, Sang-Yeob;Jeon, Jang-Bae;Kim, M.J.
    • Korean Journal of Materials Research
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    • v.16 no.10
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    • pp.656-662
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    • 2006
  • We fabricated thermal evaporated 10 nm-$Ni_xCo_{1-x}$ (x=0.2, 0.5 and 0.8) /(poly)Si films to form nanothick cobalt nickel composite silicides by a rapid thermal annealing at $700{\sim}1100^{\circ}C$ for 40 seconds. A field emission scanning electron microscope and a micro-Raman spectrometer were employed for microstructure and silicon residual stress characterization, respectively. We observed self-aligned micro-pinholes on single crystal silicon substrates silicidized at $1100^{\circ}C$. Raman silicon peak shift indicates that the residual tensile strain of $10^{-3}$ in single crystal silicon substrates existed after the silicide process. We propose thermal stress from silicide exothermic reaction and high temperature silicidation annealing may cause the pinholes. Those pinholes are expected to be avoided by lowering the silicidation temperature. Our results imply that we may use our newly proposed composite silicides to induce the appropriate strained layer in silicion substrates.

Improvement of Thermal Stability of Nickel Silicide Using Co-sputtering of Ni and Ti for Nano-Scale CMOS Technology

  • Li, Meng;Oh, Sung-Kwen;Shin, Hong-Sik;Lee, Hi-Deok
    • JSTS:Journal of Semiconductor Technology and Science
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    • v.13 no.3
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    • pp.252-258
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    • 2013
  • In this paper, a thermally stable nickel silicide technology using the co-sputtering of nickel and titanium atoms capped with TiN layer is proposed for nano-scale metal oxide semiconductor field effect transistor (MOSFET) applications. The effects of the incorporation of titanium ingredient in the co-sputtered Ni layer are characterized as a function of Ti sputtering power. The difference between the one-step rapid thermal process (RTP) and two-step RTP for the silicidation process has also been studied. It is shown that a certain proportion of titanium incorporation with two-step RTP has the best thermal stability for this structure.

Silicidation of Co/M/(100) Si bilayer Structures (Co/내열금속/(100) Si 이중층 구조의 실리사이드화)

  • 권영재;이종무;배대록;강호규
    • Journal of the Korean Ceramic Society
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    • v.35 no.5
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    • pp.505-511
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    • 1998
  • The silicide formation mechanisms of Co/Hf and Co/Nb bilayer on (100) Si have been investigated. We ob-served that crystallographic orientationso f the 500$^{\circ}C$ formed cobalt silcides were different each other with the varying intermediate layers. Epitaxial and non-epitaxial CoSi2 formed simultaneously in Co/Hf/(100Si. While only non-epitaxial CoSi2 formed in Co/Nb/(100) Si. The reason why the crystallographic orientation of CpSi2 is different for those two systems seemed to be relate to the formation and decomposition of stable reaction barriers at high temperature. The stable reaction barrier formed at high temperature could control the uniform diffusion of Co atoms which enables epitaxial growth of CoSi2.

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