Effect of cathode composition on microstructure and tribological properties of TiBN nanocomposite multilayer coating synthesized by plasma immersion ion implantation and deposition

Wen-quan Lü , Yong-zhi Cao , Lang-ping Wang , Xiao-feng Wang , Zhi-wei Gu , Yong-da Yan , Fu-li Yu

Journal of Central South University ›› 2017, Vol. 24 ›› Issue (10) : 2238 -2244.

PDF
Journal of Central South University ›› 2017, Vol. 24 ›› Issue (10) : 2238 -2244. DOI: 10.1007/s11771-017-3633-3
Article

Effect of cathode composition on microstructure and tribological properties of TiBN nanocomposite multilayer coating synthesized by plasma immersion ion implantation and deposition

Author information +
History +
PDF

Abstract

Nanocomposite multilayer TiBN coatings were prepared on Si (100) and 9Cr18Mo substrates using TiBN composite cathode plasma immersion ion implantation and deposition technique (PIIID). Synthesis of TiBN composite cathodes was conducted by powder metallurgy technology and the content of hexagonal boron nitride (h-BN) was changed from 8% to 40% (mass fraction). The as-deposited coatings were characterized by energy dispersive spectrometer (EDS), grazing incidence X-ray diffraction (GIXRD), Fourier Transform Infrared Spectroscopy (FTIR) and high resolution transmission electron microcopy (HRTEM). EDS results show that the B content of the coatings was varied from 3.71% to 13.84% (molar fraction) when the composition of the h-BN in the composited cathodes was changed from 8 % to 40% (mass fraction). GIXRD results reveal that the TiBN coatings with a B content of 8% has the main diffraction peak of TiN (200), (220) and (311), and these peaks disappear when the B content is increased. FTIR analysis of the multilayer coatings showed the presence of h-BN in all coatings. TEM images reveal that all coatings have the characteristics of self-forming nanocomposite multilayers, where the nanocomposites are composed of face-centered cubic TiN or h-BN nanocrystalline embedded in amorphous matrix. The tribological tests reveal that the TiBN coatings exhibit a marked decrease of coefficient at room temperature (~0.25). The improved properties were found to be derived from the comprehensiveness of the self-forming multilayers structure and the h-BN solid lubrication effects in the coatings.

Keywords

TiBN coatings / nanocomposite / multilayer / plasma immersion ion implantation and deposition

Cite this article

Download citation ▾
Wen-quan Lü, Yong-zhi Cao, Lang-ping Wang, Xiao-feng Wang, Zhi-wei Gu, Yong-da Yan, Fu-li Yu. Effect of cathode composition on microstructure and tribological properties of TiBN nanocomposite multilayer coating synthesized by plasma immersion ion implantation and deposition. Journal of Central South University, 2017, 24(10): 2238-2244 DOI:10.1007/s11771-017-3633-3

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

BousserE, MartinuL, Klemberg-SapiehaJ E. Solid particle erosion mechanisms of protective coatings for aerospace applications [J]. Surface and Coatings Technology, 2014, 257: 165-181

[2]

GongF, GuoB. Effects of solid lubrication film on SKD11 in micro sheet forming [J]. Surface and Coatings Technology, 2013, 232: 814-820

[3]

VoevodinA A, MuratoreC, AouadiS M. Hard coatings with high temperature adaptive lubrication and contact thermal management: Review [J]. Surface and Coatings Technology, 2014, 257: 247-265

[4]

MollartT P, HauptJ, GilmoreR, GisslerW. Tribological behavior of homogeneous TiBN, TiBNC and TiN/hBN/TiB2 multilayer coatings [J]. Surface and Coatings Technology, 1996, 86-87: 231-236

[5]

QinY, XiongD, LiJ. Tribological properties of laser surface textured and plasma electrolytic oxidation duplex-treated Ti6Al4V alloy deposited with MoS2 film [J]. Surface and Coatings Technology, 2015, 269: 266-272

[6]

RebholzC, SchneiderJ M, VoevodinA A, SteinebrunnerJ, CharitidisC, LogothetidisS, LeylandA, MatthewsA. Structure, mechanical and tribological properties of sputtered TiAlBN thin films [J]. Surface and coatings technology, 1999, 113: 126-133

[7]

BouzakisK D, BouzakisE, KombogiannisS, MakrimallakisS, SkordarisN, MichailidisG, CharalampousP, ParaskevopoulouR, SaoubiR M, AurichJ C, BarthelmaF, BiermannD, DenkenaB, DimitrovD, EnginS, KarpuschewskiB, KlockeF Q T, PoulachonG, RechJ, SchulzeV, SettineriL, SrivastavaA, WegenerK, UhlmannE, ZemanP. Effect of cutting edge preparation of coated tools on their performance in milling various materials [J]. CIRP Journal of Manufacturing Science and Technology, 2014, 7: 264-273

[8]

BouzakisK D, HadjiyiannisS, SkordarisG, AnastopoulosJ, MirisidisI, MichailidisN, EfstathiouK, KnotekO, ErkensG, CremerR, RambadtS, WirthI. The influence of the coating thickness on its strength properties and on the milling performance of PVD coated inserts [J]. Surface and Coatings Technology, 2003, 174-175: 393-401

[9]

WangT, ZhangG, JiangB. Comparison in mechanical and tribological properties of CrTiAlMoN and CrTiAlN nano-multilayer coatings deposited by magnetron sputtering [J]. Applied Surface Science, 2016, 363: 217-224

[10]

ZareI, MoghadamR, AhmadvandH, JannesariM. Design and fabrication of multi-layers infrared antireflection coating consisting of ZnS and Ge on ZnS substrate [J]. Infrared Physics & Technology, 2016, 75: 18-21

[11]

StueberM, HolleckH, LeisteH, SeemannK, UlrichS, ZiebertC. Concepts for the design of advanced nanoscale PVD multilayer protective thin films [J]. Journal of Alloys and Compounds, 2009, 483: 321-333

[12]

LuY Y, KotokaR, LigdaJ P, YarmolenkoS N, SchusterB E, WeiQ. Morphological and mechanical stability of HCP-based multilayer nanofilms at elevated temperatures [J]. Surface and Coatings Technology, 2015, 275: 142-147

[13]

CallistiM, Lozano-PerezS, PolcarT. Structural and mechanical properties of ?-irradiated Zr/Nb multilayer nanocomposites [J]. Materials Letter, 2016, 163: 138-141

[14]

BanerjeeT, ChattopadhyayA K. Structural, mechanical and tribological properties of WS2-Ti composite coating with and without hard under layer of TiN [J]. Surface and Coatings Technology, 2014, 258: 849-860

[15]

DanylukM, DhingraA. Rolling contact fatigue using solid thin film lubrication [J]. Wear, 2012, 274-275: 368-376

[16]

BudnaK P, NeidhardtJ, MayrhoferP H, MittererC. Synthesis-structure-property relations for Cr-B-N coatings sputter deposited reactively from a Cr-B target with 20 at% B [J]. Vacuum, 2008, 82: 771-776

[17]

GuleryuzC G, KrzanowskiJ. Mechanisms of selflubrication in patterned TiN coatings containing solid lubricant microreservoirs [J]. Surface and Coatings Technology, 2010, 204: 2392-2399

[18]

BartlM H. Nanostructure-driven functionalities in thin films and coatings [J]. Scripta Materialia, 2014, 74: 1-2

[19]

FazelM, JaziM R G, BahramzadehS, BakhshiS R, RamazaniM. Effect of solid lubricant particles on room and elevated temperature tribological properties of Ni–SiC composite coating [J]. Surface and Coatings Technology, 2014, 254: 252-259

[20]

BakerM A, KloseS, RebholzC, LeylandA, MatthewsA. Evaluating the microstructure and performance of nanocomposite PVD TiAlBN coatings [J]. Surface and Coatings Technology, 2002, 151-152: 338-343

[21]

HanY, ZhouJ, DongJ. Electronic and magnetic properties of MoS2 nanoribbons with sulfur line vacancy defects [J]. Applied Surface Science, 2015, 346: 470-476

[22]

FranzR, MittererC. Vanadium containing self-adaptive lowfriction hard coatings for high-temperature applications: A review [J]. Surface and Coatings Technology, 2013, 228: 1-13

[23]

WangL-p, HuangL, WangY-h, XieZ-w, WangX-feng. Duplex DLC coatings fabricated on the inner surface of a tube using plasma immersion ion implantation and deposition [J]. Diamond and Related Materials, 2008, 17: 43-47

[24]

MayrhoferP H, StoiberM, MittererC. Age hardening of PACVD TiBN thin films [J]. Scripta Materialia, 2005, 53: 241-245

[25]

PaldeyS, DeeviS C. Single layer and multilayer wear resistant coatings of (Ti,Al)N: A review [J]. Materials Science and Engineering A, 2003, 342: 58-79

[26]

DengX, KousakaH, TokoroyamaT, UmeharaN. Deposition and tribological behaviors of ternary BCN coatings at elevated temperatures [J]. Surface and Coatings Technology, 2014, 259: 2-6

[27]

ZhangR F, ShengS H, VeprekS. Stability of Ti-B-N solid solutions and the formation of nc-TiN/a-BN nanocomposites studied by combined ab initio and thermodynamic calculations [J]. Acta Materialia, 2008, 56: 4440-4449

[28]

DreilingI, RaischC, GlaserJ, StiensD, ChasseT. Temperature dependent tribo-oxidation of Ti-B-N coatings studied by Raman spectroscopy [J]. Wear, 2012, 288: 62-71

[29]

KeuneckeM, BewiloguaK, WiemannE, WeigelK, WittorfR, ThomsenH. Boron containing combination tool coatings-characterization and application tests [J]. Thin Solid Films, 2006, 494: 58-62

[30]

AouadiS M, NamavarF, GorishnyyT Z, RohdeS L. Characterization of TiBN films grown by ion beam assisted deposition [J]. Surface and Coatings Technology, 2002, 160: 145-151

[31]

ShimadaS, TakahashiM, KiyonoH, TsujinoJ. Coatings and microstructures of monolithic TiB2 films and double layer and composite TiCN/TiB2 films from alkoxide solutions by thermal plasma CVD [J]. Thin Solid Films, 2008, 516: 6616-6621

[32]

YuL-h, ZhaoH-j, XuJ-hua. Tribological and corrosion performance of WBN composite films deposited by reactive magnetron sputtering [J]. Applied Surface Science, 2014, 315: 380-386

[33]

LvW-q, WangL-p, CaoY-z, GuZ-w, WangX-f, YangY-d, YuF-li. Effect of cathode composition on microstructure and tribological properties of TiBN nanocomposite multilayer coating synthesized by plasma immersion ion implantation and deposition [J]. Chinese Physics Letters, 2015, 270: 290-298

[34]

WangL-p, XieZ-w, HuangL, WangX-feng. MoS2/Ti multilayer deposited on 2Cr13 substrate by PIIID [J]. Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, 2008, 266: 730-733

[35]

MirkarimiP B, MccartyK F, MedlinD L. Review of advances in cubic boron nitride film synthesis [J]. Materials Science and Engineering R: Reports, 1997, 21: 47-100

[36]

MckenzieD R, McfallW D, SaintyW G, DavisC A, CollinsR E. Compressive stress induced formation of cubic boron nitride [J]. Diamond and Related Materials, 1993, 2: 970-976

[37]

ThevenotF. Boron carbide—A comprehensive review [J]. Journal of the European Ceramic Society, 1990, 6: 205-225

AI Summary AI Mindmap
PDF

142

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/