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納米CrNx涂層相組成、結(jié)構(gòu)及力學(xué)性能研究
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大連理工大學(xué)材料科學(xué)與工程學(xué)院表面工程實(shí)驗(yàn)室

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國(guó)家重點(diǎn)基礎(chǔ)研究發(fā)展計(jì)劃(2018YFA0704603),國(guó)家自然科學(xué)基金(51601029, U21B2078),中央高?;究蒲袠I(yè)務(wù)費(fèi)專項(xiàng)資金(DUT19JC52)


Phase Composition of Nano-CrNx Coating and Its Effect on Mechanical Properties
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    摘要:

    采用高功率調(diào)制脈沖磁控濺射(Modulated Pulsed Power magnetron sputtering, MPPMS)和脈沖直流磁控濺射(Pulsed Direct Current magnetron sputtering, PDCMS)復(fù)合沉積CrNx涂層,通過(guò)調(diào)節(jié)氮?dú)饬髁勘燃盀R射功率,研究了氮?dú)?氬氣流量比、PDCMS濺射功率及MPPMS濺射功率等工藝參數(shù)對(duì)CrNx涂層成分、相組成、微結(jié)構(gòu)和力學(xué)性能的影響。通過(guò)電子探針(EPMA)、X射線衍射儀(XRD)、掃描電子顯微鏡(SEM)、納米壓痕儀及維氏硬度計(jì)等,分別對(duì)CrNx涂層的成分、相組成、微結(jié)構(gòu)、形貌、硬度及斷裂韌性等進(jìn)行了表征。當(dāng)PDCMS濺射功率從700 W增加到1000 W,MPPMS峰值功率增加43.5%,涂層中Cr含量由61.0 at.%增加到65.4 at.%,N含量由39.0 at.%減少到34.6 at.%,而CrNx涂層主要由Cr2N相組成。隨著濺射功率的增加,CrNx涂層硬度變化不大,均在20 GPa左右,而涂層的致密性和斷裂韌性均得到明顯提升。流量比由15%增加至50%,MPPMS的峰值電流和峰值功率先減小后增加,涂層的物相逐漸由Cr2N向CrN轉(zhuǎn)變。當(dāng)?shù)獨(dú)饬髁勘葹?5%時(shí),CrNx涂層由Cr2N和CrN兩相組成,受兩相結(jié)構(gòu)的影響,CrNx涂層的硬度值、殘余壓應(yīng)力值和斷裂韌性值均達(dá)到最大值,分別為20.5 GPa、-901.8 MPa和6.5 MPa·m1/2。電子溫度應(yīng)為CrNx涂層相結(jié)構(gòu)變化的主要驅(qū)動(dòng)力,致密性和兩相結(jié)構(gòu)是影響CrNx涂層斷裂韌性的主因。

    Abstract:

    Modulated pulsed power magnetron sputtering (MPPMS) and pulse direct current magnetron sputtering (PDCMS) were employed to deposit CrNx coatings by controlling the nitrogen/argon flow ratio and sputtering power, respectively. The influence of nitrogen flow ratio as well as sputtering power of MPPMS and PDCMS were systematically studied to learn the roles of process parameters on CrNx coatings composition, phase, microstructure and mechanical properties. The composition, phase, microstructure, morphology, hardness as well as fracture toughness of coatings were characterized through electron probe micro analysis (EPMA), X-ray diffractometer (XRD), scanning electron microscope (SEM), nanoindentation device. As the PDCMS sputtering power increased from 700 W to 1000 W, the peak power of MPPMS showed an increase of 43.5%. The Cr elements in the coatings were ranging from 61.0 at.% to 65.4 at.%, while N contents decreased from 39.0 at.% to 34.6 at.%. The CrNx coatings were mainly composed of Cr2N phase without obvious changes. With the increase of the sputtering power, the hardness of the CrNx coatings was about 20 GPa, while the fracture toughness of the coatings was improved significantly. Changing the flow ratio from 15% to 50%, the peak current of MPPMS first decreased followed by an increase, the phase structure of the coatings gradually varied from Cr2N to CrN. When the nitrogen flow ratio was about 35%, the CrNx coatings were mainly composed of Cr2N and CrN. And the hardness, residual compressive stress and fracture toughness of the CrNx coating all attained their maximum values of 20.5 GPa, -901.8 MPa and 6.5 MPa·m1/2, respectively. The electron temperature should be the driving force for phase structure variation for CrNx coatings, and the dense and two-phase microstructure controlled the toughness of CrNx coatings.

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李玉閣,陳昌隆,劉偉陽(yáng),雷明凱.納米CrNx涂層相組成、結(jié)構(gòu)及力學(xué)性能研究[J].稀有金屬材料與工程,2023,52(3):989~998.[Li Yuge, Chen Changlong, Liu Weiyang, Lei Mingkai. Phase Composition of Nano-CrNx Coating and Its Effect on Mechanical Properties[J]. Rare Metal Materials and Engineering,2023,52(3):989~998.]
DOI:10.12442/j. issn.1002-185X.20220087

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  • 收稿日期:2022-01-27
  • 最后修改日期:2022-03-14
  • 錄用日期:2022-03-28
  • 在線發(fā)布日期: 2023-04-07
  • 出版日期: 2023-03-24