Examining amino acids as environmentally friendly corrosion inhibitors for Cu and Co chemical mechanical planarization

被引:6
作者
Tran, Thi Thuy Hoang [1 ]
Gichovi, Juster [1 ]
Commane, Julia [1 ]
Podlaha, Elizabeth J. [1 ]
Seo, Jihoon [1 ]
机构
[1] Clarkson Univ, Dept Chem & Biomol Engn, Potsdam, NY 13699 USA
来源
JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING | 2024年 / 12卷 / 05期
关键词
Chemical mechanical planarization; Green corrosion inhibitors; Semiconductor; Sustainability; Cu interconnect; REDUCED GALVANIC CORROSION; COPPER/COBALT INTERFACE; OXIDE SURFACES; WASTE-WATER; COPPER; CMP; ADSORPTION; BEHAVIOR; STEEL; BENZOTRIAZOLE;
D O I
10.1016/j.jece.2024.113669
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Aliphatic amino acids (AAs) were investigated as environmentally friendly alternatives to benzotriazole (BTA) in the chemical mechanical planarization (CMP) process for Cu interconnects. The study evaluated the corrosion resistance, galvanic corrosion, and polishing removal rates (RR) for Cu and Co in a silica-based slurry containing methionine, glutamic acid, and leucine. Corrosion characteristics were determined using linear sweep voltammetry, and the removal rate was assessed by polishing wafers under controlled CMP conditions. Metal surfaces were analyzed by X-ray photoelectron spectroscopy, and scanning electron microscopy. Results indicated that the distinctive functional groups in the amino acids influenced corrosion and polishing behaviors driven by different Cu species in the passivating film layer. Methionine with its sulfur-containing side chain, exhibited exceptional inhibition capabilities by stabilizing Cu(I) species compared to Cu(II), involving a combination of physisorption and chemisorption. It also effectively controlled Cu-Co galvanic corrosion with a low igc= 0.9 mu A/cm2. Leucine, with its branched hydrocarbon chain, mitigated Cu corrosion through physisorption (20.5 kJ/mol), but increased galvanic corrosion for Co (igc = 45 mu A/cm2). Leucine formed a thin passive layer that easily broke down during the Cu(I) to Cu(II) transition. Glutamic acid, with its additional carboxylic acid group, was not effective as a corrosion inhibitor but showed a relatively low |Delta Ecorr|= 5 mV. Metal removal rates of Cu and Co followed the same trend with corrosion results. The selectivity of Cu:Co:TEOS removal with methionine was more comparable than that achieved with other additives, beneficial for Cu barrier CMP.
引用
收藏
页数:11
相关论文
共 62 条
  • [11] New insight in the behaviour of Co-H2Osystem at 25-150 °C, based on revised Pourbaix diagrams
    Chivot, J.
    Mendoza, L.
    Mansour, C.
    Pauporte, T.
    Cassir, M.
    [J]. CORROSION SCIENCE, 2008, 50 (01) : 62 - 69
  • [12] Investigation of cu-BTA complex formation during Cu chemical mechanical planarization process
    Cho, Byoung-Jun
    Shima, Shohei
    Hamada, Satomi
    Park, Jin-Goo
    [J]. APPLIED SURFACE SCIENCE, 2016, 384 : 505 - 510
  • [13] Adsorption of Amino Acids and Peptides on Metal and Oxide Surfaces in Water Environment: A Synthetic and Prospective Review
    Costa, D.
    Savio, L.
    Pradiera, C-M.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2016, 120 (29) : 7039 - 7052
  • [14] Review of corrosive environments for copper and its corrosion inhibitors
    Fateh, A.
    Aliofkhazraei, M.
    Rezvanian, A. R.
    [J]. ARABIAN JOURNAL OF CHEMISTRY, 2020, 13 (01) : 481 - 544
  • [15] Inhibition of copper corrosion by 1,2,3-benzotriazole: A review
    Finsgar, Matjaz
    Milosev, Ingrid
    [J]. CORROSION SCIENCE, 2010, 52 (09) : 2737 - 2749
  • [16] SOME CHEMICAL ASPECTS OF THE CORROSION INHIBITION OF COPPER BY BENZTRIAZOLE
    FOX, PG
    LEWIS, G
    BODEN, PJ
    [J]. CORROSION SCIENCE, 1979, 19 (07) : 457 - 467
  • [17] Gichovi J., 2023, ECS Meet. Abstr. MA2023-01 (55), P2689, DOI [10.1149/MA2023-01552689mtgabs, DOI 10.1149/MA2023-01552689MTGABS]
  • [18] Study on chemical effects of H2O2 and glycine in the Copper CMP process using ReaxFF MD
    Guo, Xiaoguang
    Yuan, Song
    Gou, Yongjun
    Wang, Xiaoli
    Guo, Jiang
    Jin, Zhuji
    Kang, Renke
    [J]. APPLIED SURFACE SCIENCE, 2020, 508 (508)
  • [19] Hamadi L., 2018, Egypt. J. Pet, V27, P1157, DOI [10.1016/j.ejpe.2018.04.004, DOI 10.1016/J.EJPE.2018.04.004]
  • [20] Photochemical degradation of benzotriazole
    Hem, LJ
    Hartnik, T
    Roseth, R
    Breedveld, GD
    [J]. JOURNAL OF ENVIRONMENTAL SCIENCE AND HEALTH PART A-TOXIC/HAZARDOUS SUBSTANCES & ENVIRONMENTAL ENGINEERING, 2003, 38 (03): : 471 - 481