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1.
Etching characteristics and the mechanism of HfO2 thin films in Cl2/Ar inductively-coupled plasma were investigated. The etch rate of HfO2 was measured as a function of the Cl2/Ar mixing ratio in the range of 0 to 100% Ar at a fixed gas pressure (6 mTorr), input power (700 W), and bias power (300 W). We found that an increase in the Ar mixing ratio resulted in a monotonic decrease in the HfO2 etch rate in the range of 10.3 to 0.7 nm/min while the etch rate of the photoresist increased from 152.1 to 375.0 nm/min for 0 to 100% Ar. To examine the etching mechanism of HfO2 films, we combined plasma diagnostics using Langmuir probes and quadrupole mass spectrometry with global (zero-dimensional) plasma modeling. We found that the HfO2 etching process was not controlled by ion-surface interaction kinetics and formally corresponds to the reaction rate-limited etch regime.  相似文献   

2.
A.M Efremov 《Vacuum》2004,75(4):321-329
The effect of the CF4/Ar mixing ratio on the etching behaviour and mechanisms for Pb(Zr,Ti)O3 (PZT) thin films in an inductively coupled plasma was carried out. It was found that an increase of Ar mixing ratio causes non-monotonic behaviour of the PZT etch rate, which reaches a maximum of 2.38 nm/s at 80% Ar. Investigating the plasma parameters, we found a weak sensitivity of both electron temperature and electron density to the change of CF4/Ar mixing ratio. A combination of zero-dimensional plasma model with the model of surface kinetics shows the possibility of a non-monotonic etch rate behaviour due to the concurrence of physical and chemical pathways in the ion-assisted chemical reaction.  相似文献   

3.
Y.S. Kim  J.T. Lim  G.Y. Yeom 《Thin solid films》2009,517(14):4065-3864
SiO2-like thin films were deposited at a low temperature (< 50 °C) by a remote-type, atmospheric pressure plasma enhanced chemical vapor deposition (AP-PECVD) using a pin-to-plate-type, dielectric barrier discharge with gas mixtures containing hexamethyldisilazane (HMDS)/O2/He/Ar. The film characteristics were investigated according to the HMDS and O2 flow rates. To obtain a more SiO2-like thin film, an adequate combination of HMDS and oxygen flow rates was required to remove the -(CH3)x bonding in the HMDS and to oxidize the Si in HMDS effectively. At the optimized flow rates, the surface roughness of the SiO2-like thin film was also the lowest. By using HMDS (50 sccm) and O2 (500 sccm) flow rates in the gas mixture of HMDS/O2/He (2 slm)/Ar (600 sccm), SiO2-like thin films with a low impurity (< 6.35% C) were obtained at a deposition rate of approximately 10.7 nm/min.  相似文献   

4.
In this work, we investigated the etching characteristics of TiO2 thin films and the selectivity of TiO2 to SiO2 in a BCl3/Ar inductively coupled plasma (ICP) system. The maximum etch rate of 84.68 nm/min was obtained for TiO2 thin films at a gas mixture ratio of BCl3/Ar (25:75%). In addition, etch rates were measured as a function of etching parameters, such as the RF power, DC-bias voltage and process pressure. Using the X-ray photoelectron spectroscopy analysis the accumulation of chemical reaction on the etched surface was investigated. Based on these data, the ion-assisted physical sputtering was proposed as the main etch mechanism for the BCl3-containing plasmas.  相似文献   

5.
The investigation of Al2O3 etch characteristics in the BCl3/Ar inductively coupled plasma was carried out in terms of effects of input process parameters (gas pressure, input power, bias power) on etch rate and etch selectivity over poly-Si and photoresist. It was found that, with the changes in gas pressure and input power, the Al2O3 etch rate follows the behavior of ion current density while the process rate is noticeably contributed by the chemical etch pathway. The influence of input power on the etch threshold may be connected with the concurrence of chemical and physical etch pathways in ion-assisted chemical reaction.  相似文献   

6.
In this study, we carried out an investigation in the etching characteristics of TiN thin films in a C12/Ar adaptive coupled plasma. The maximum etch rate of the TiN thin films was 768 nm/min at a gas mixing ratio of C12 (75%)/Ar (25%). At the same time, the etch rate was measured as functions of the various etching parameters. The X-ray photoelectron spectroscopy analysis showed the efficient destruction of the oxide bonds by the ion bombardment as well as the accumulation of low volatile reaction products on the etched surface. Field emission Auger electron spectroscopy analysis was used to examine the efficiency of the ion-stimulated desorption of the reaction products.  相似文献   

7.
Xue-Yang 《Thin solid films》2010,518(22):6441-6445
In this study, the etching characteristics of ALD deposited Al2O3 thin film in a BCl3/N2 plasma were investigated. The experiments were performed by comparing the etch rates and the selectivity of Al2O3 over SiO2 as functions of the input plasma parameters, such as the gas mixing ratio, the DC-bias voltage, the RF power, and the process pressure. The maximum etch rate was obtained at 155.8 nm/min under a 15 mTorr process pressure, 700 W of RF power, and a BCl3 (6 sccm)/N2 (14 sccm) plasma. The highest etch selectivity was 1.9. We used X-ray photoelectron spectroscopy (XPS) to investigate the chemical reactions on the etched surface. Auger electron spectroscopy (AES) was used for the elemental analysis of the etched surfaces.  相似文献   

8.
We investigated the N2 additive effect on the etch rates of TiN and SiO2 and etch profile of TiN in N2/Cl2/Ar adaptively coupled plasma (ACP). The mixing ratio of Cl2 and Ar was fixed at 75 and 25 sccm, respectively. The N2 flow rate was increased from 0 to 9 sccm under the constant pressure of 10 mTorr. As N2 flow rate was increased in N2/Cl2/Ar plasma, the etch rate of TiN was linearly increased, but that of SiO2 was increased non-monotonically. The etch profile and the compositional changes of TiN was investigated with field emission-scanning electron microscope (FE-SEM), FE-Auger electron spectroscopy (FE-AES) and x-ray photoelectron spectroscopy (XPS). When 9 sccm N2 was added into Cl2/Ar, a steep etch profile and clean surface of TiN was obtained. In addition, the signals of TiN and Ti were disappeared in FE-AES and XPS when N2 additive flow into Cl2/Ar was above 6 sccm. From the experimental data, the increase in TiN etch rate was mainly caused by the increase of desorption and evacuation rate of etch by products because of the increased effective pumping speed. The etch mechanism of TiN in N2/Cl2/Ar ACP plasma can be concluded as the ion enhanced chemical etch.  相似文献   

9.
In this study, we investigated to the etch characteristics of indium zinc oxide (IZO) thin films in a CF4/Ar plasma, namely, etch rate and selectivity toward SiO2. A maximum etch rate of 76.6 nm/min was obtained for IZO thin films at a gas mixture ratio of CF4/Ar (25:75%). In addition, etch rates were measured as a function of etching parameters, including adaptively coupled plasma chamber pressure. X-ray photoelectron spectroscopy analysis showed efficient destruction of the oxide bonds by ion bombardment, as well as accumulation of low volatile reaction products on the surface of the etched IZO thin films. Field emission Auger electron spectroscopy analysis was used to examine the efficiency of ion-stimulated desorption of the reaction products.  相似文献   

10.
In this study, we monitored the HfAlO3 etch rate and selectivity to SiO2 as a function of the etch parameters (gas mixing ratio, RF power, DC-bias voltage, and process pressure). A maximum etch rate of 52.6 nm/min was achieved in the 30% BCl3/(BCl3 + Ar) plasma. The etch selectivity of HfAlO3 to SiO2 reached 1.4. As the RF power and the DC-bias voltage increased, the etch rate of the HfAlO3 thin film increased. As the process pressure decreased, the etch rate of the HfAlO3 thin films increased. The chemical state of the etched surfaces was investigated by X-ray Photoelectron Spectroscopy (XPS). According to the results, the etching of HfAlO3 thin films follows the ion-assisted chemical etching mechanism.  相似文献   

11.
Etch damage of TiO2 thin films with the anatase phase by capacitively coupled RF Ar plasmas has been investigated. The plasma etching causes a mixed phase of anatase and rutile or the rutile phase. The effect of Ar plasma etching damage on degenerating TiO2 thin films is dependent on gas pressure and etching time. The physical etching effect at a low gas pressure (1.3 Pa) contributes to the degradation: the atomic O concentration at the thin film surface is strongly increased. At a high gas pressure (13-27 Pa) and long etching time (60 min), there are a variety of surface defects or pits, which seem to be similar to those for GaN resulting from synergy effect between particle and UV radiation from the plasmas. For the hydrophilicity, the thin film etched at the high gas pressure and a short etching time (5 min) seems to have no etch damage: its contact angle property is almost similar to that for the as-grown thin film, and is independent of the black light irradiation. This result would probably result from formation of donor-like surface defects such as oxygen vacancy.  相似文献   

12.
Elly Gil 《Thin solid films》2010,518(22):6403-6407
SiO2-like thin films were deposited using a modified dielectric barrier discharge with a gas mixture of hexamethyldisilazane (HMDS)/O2/He/Ar and their film characteristics were investigated as functions of the HMDS and O2 flow rates. As the HMDS flow rate was increased, higher amounts of Si-(CH3)x bonds and lower amounts of Si-OH bonds were observed in the deposited SiOx, due to the increase in the amount of the less dissociated HMDS, which also caused an increase of the surface roughness. The addition and increase of the oxygen flow to HMDS/He/Ar brought the stoichiometry of SiOx close to SiO2 and decreased the surface roughness by decreasing the amount of Si-(CH3)x bonds through the increased decomposition and oxidation of HMDS, even though the deposition rate was decreased. However, when the O2 flow rate was higher than a certain threshold, the surface roughness increased again, possibly due to the decrease in the extent of HMDS dissociation caused by the decreased plasma density at the higher oxygen flow rate. By using an optimized gas mixture of HMDS (150 sccm)/O2 (14 slm)/He (5 slm)/Ar (3 slm), SiO2-like thin films with a very low impurity level and having a smooth surface could be obtained with a deposition rate of approximately 42.7 nm/min.  相似文献   

13.
Thin films of HfAlO3, a high-k material, were etched using inductively-coupled plasma. The dry etching mechanism of the HfAlO3 thin film was studied by varying the Cl2/Ar gas mixing ratio, RF power, direct current bias voltage, and process pressure. The maximum etch rate of the HfAlO3 thin film was 16.9 nm/min at a C12/(C12 + Ar) ratio of 80%. Our results showed that the highest etch rate of the HfAlO3 thin films was achieved by reactive ion etching using Cl radicals, due to the high volatility of the metal-chlorides. Consequently, the increased chemical effect caused an increase in the etch rate of the HfAlO3 thin film. Surface analysis by x-ray photoelectron spectroscopy showed evidence that Hf, Al and O reacted with Cl and formed nonvolatile metal-oxide compounds and volatile metal-chlorides. This effect may be related to the concurrence of chemical and physical pathways in the ion-assisted chemical reaction.  相似文献   

14.
Diamond-like amorphous carbon (DAC) films were deposited for field-emission application using supermagnetron plasma by mixing N2 or H2 in i-C4H10 gas at the upper and lower electrode rf powers (UPRF/LORF) of 800 W/100-800 W. At an 800 W/800 W, the N2 (0-80%) gas-mixed DAC films showed an emission threshold electric field (ETH) of 19 V/μm. At the 800 W/100 W, the H2 (20%) gas-mixed DAC film showed low ETH's of 13 V/μm, respectively. The moderate reduction of CC and CN double bonds by the decrease of LORF from 800 W to 100 W was found to be effective to lower ETH.  相似文献   

15.
In this study, we compared the line edge roughnesses (LER) and profile angles of chemical vapor deposited (CVD) amorphous carbon (a-C) patterns etched in an inductively coupled plasma (ICP) etcher produced by varying process parameters such as the N2 gas flow ratio, Q (N2), and dc self-bias voltage (Vdc) in O2/N2/Ar and H2/N2/Ar plasmas. The tendencies of the LER and profile angle values of the etched CVD a-C pattern were similar in both plasmas. The LER was smaller in the O2/N2/Ar than in the H2/N2/Ar plasmas, and the profile angle was larger in the O2/N2/Ar than in the H2/N2/Ar plasmas under the same processes conditions. The use of O2/N2/Ar plasma was more advantageous than the H2/N2/Ar plasma for controlling LER and profile angle.  相似文献   

16.
Do Young Lee 《Thin solid films》2009,517(14):4047-4051
Inductively coupled plasma reactive ion etching of indium zinc oxide (IZO) thin films masked with a photoresist was performed using a Cl2/Ar gas. The etch rate of the IZO thin films increased as Cl2 gas was added to Ar gas, reaching a maximum at 60% Cl2 and decreasing thereafter. The degree of anisotropy in the etch profile improved with increasing coil rf power and dc-bias voltage. Changes in pressure had little effect on the etch profile. X-ray photoelectron spectroscopy confirmed the formation of InCl3 and ZnCl2 on the etched surface. The surface morphology of the films etched at high Cl2 concentrations was smoother than that of the films etched at low Cl2 concentrations. These results suggest that the dry etching of IZO thin films in a Cl2/Ar gas occurs according to a reactive ion etching mechanism involving ion sputtering and a surface reaction.  相似文献   

17.
M.H. Shin  S.H. Jung  N.-E. Lee 《Thin solid films》2007,515(12):4950-4954
Effect of doping elements on the etching characteristics of doped-ZnO (Ag, Li, and Al) thin films, etched with a positive photoresist (PR) mask, and an etch process window for infinite etch selectivity were investigated by varying the CH4 flow ratio and self-bias voltage, Vdc, in inductively coupled CH4/H2/Ar plasmas. Increased doping of ZnO films decreased the etch rates significantly presumably due to lower volatility of reaction by-products of doped Li, Ag, and Al in CH4/H2/Ar plasmas. The etch rate of AZO (Al-doped ZnO) was most significantly decreased as the doping concentration is increased from 4 to 10 wt%. It was found that process window for infinite etch selectivity of the doped ZnO to the PR is closely related to a balance between deposition and removal processes of a-C:H (amorphous hydrogenated carbon) layer on the doped-ZnO surface. Measurements of optical emission of the radical species in the plasma and surface binding states by optical emission spectroscopy (OES) and X-ray photoelectron spectroscopy (XPS), respectively, implied that the chemical reaction of CH radicals with Zn atoms in doped-ZnO play an important role in determining the doped-ZnO etch rate together with an ion-enhanced removal mechanism of a-C:H layer as well as Zn(CHx)y etch by-products.  相似文献   

18.
A.M. Efremov 《Vacuum》2004,75(2):133-142
In this work, we carried out investigations aimed at understanding the effect of gas mixing ratio on plasma parameters, gas phase composition and etch rate in CF4/Ar inductively coupled plasma. For this purpose, a combination of experimental methods and modelling was used. Experiments showed that electron temperature and electron density are not very sensitive to variations of Ar content in CF4/Ar plasma. From a zero-dimensional plasma model, the densities of both neutral and charged particles change monotonically. The analysis of surface kinetics based on an ion-assisted etching mechanism showed the possibility of non-monotonic etch rate behaviour due to a concurrence of chemical and physical etching pathways.  相似文献   

19.
Dry etching of indium zinc oxide (IZO) thin films was performed using inductively coupled plasma reactive ion etching in a C2F6/Ar gas. The etch characteristics of IZO films were investigated as a function of gas concentration, coil rf power, dc-bias voltage to substrate, and gas pressure. As the C2F6 concentration was increased, the etch rate of the IZO films decreased and the degree of anisotropy in the etch profile also decreased. The etch profile was improved with increasing coil rf power and dc-bias voltage, and decreasing gas pressure. An X-ray photoelectron spectroscopy analysis confirmed the formation of InF3 and ZnF2 compounds on the etched surface due to the chemical reaction of IZO films with fluorine radicals. In addition, the film surfaces etched at different conditions were examined by atomic force microscopy. These results demonstrated that the etch mechanism of IZO thin films followed sputter etching with the assistance of chemical reaction.  相似文献   

20.
Inductively coupled plasma reactive ion etching of titanium thin films patterned with a photoresist using Cl2/Ar gas was examined. The etch rates of the titanium thin films increased with increasing the Cl2 concentration but the etch profiles varied. In addition, the effects of the coil rf power, dc-bias voltage and gas pressure on the etch rate and etch profile were investigated. The etch rate increased with increasing coil rf power, dc-bias voltage and gas pressure. The degree of anisotropy in the etched titanium films improved with increasing coil rf power and dc-bias voltage and decreasing gas pressure. X-ray photoelectron spectroscopy revealed the formation of titanium compounds during etching, indicating that Ti films etching proceeds by a reactive ion etching mechanism.  相似文献   

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