A STUDY ON ELECTROLESS COPPER DEPOSITION FOR DESKTOP STEREOLITHOGRAPHY 3D PRINTING MATERIALS

被引:0
|
作者
Ahmad, A. [1 ,2 ]
Wahab, Saidin [3 ]
Kamarudin, K. [1 ,2 ]
Hehsan, H. [1 ,2 ]
机构
[1] Univ Tun Hussein Onn Malaysia, Fac Engn Technol, Dept Mech Engn Technol, Km 1,Jalan Panchor, Pagoh 84600, Johor, Malaysia
[2] Univ Tun Hussein Onn Malaysia, Fac Engn Technol, Innovat Mfg Technol Imt, Km 1,Jalan Panchor, Pagoh 84600, Johor, Malaysia
[3] Univ Tun Hussein Onn Malaysia, Adv Mfg & Mat Ctr Ammc, Parit Raja, Batu Pahat 86400, Johor, Malaysia
关键词
Stereolithography; Electroless copper deposition; Optimization; Adhesion quality; NICKEL; METALLIZATION; OPTIMIZATION; RESINS;
D O I
10.24425/amm.2024.151409
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
Electroless deposition is a method of metallizing parts without needing for an electrical source that can be performed on electrically conductive and non-conductive materials. Adhesion quality is an essential aspect of the electroless deposition process that determines the metal deposition conditions. The properties of stereolithography (SLA) 3D printed parts can be improved through the metallization process for various applications. In this study, optimization through the orthogonal design method was used to obtain the optimal processing parameters of electroless copper deposition on desktop SLA material with respect to adhesion quality. Experimental work was carried out according to the L9 (34) orthogonal array, followed by an evaluation of the signal-to-noise (S/N) ratio and analysis of variance (ANOVA). Based on the S/N ratio results, the optimal processing parameters for adhesion quality were potassium hydroxide concentration (400 g/L), etching time (30 min), formaldehyde concentration (3.75 mL/L) and deposition time (30 min). The results of the study are useful for industries such as rapid tooling, rapid prototyping, and semiconductors.
引用
收藏
页码:1419 / 1424
页数:6
相关论文
共 50 条
  • [1] 3D printing of Copper by Electrochemical Deposition Method
    Misurak, Michal
    Serak, Jan
    Vojtech, Dalibor
    MANUFACTURING TECHNOLOGY, 2023, 23 (06): : 880 - 892
  • [2] 3D printing of nanocomposite pills through desktop vat photopolymerization (stereolithography) for drug delivery reasons
    Sharma, Peeyush Kumar
    Choudhury, Dinesh
    Yadav, Vivek
    Murty, U. S. N.
    Banerjee, Subham
    3D PRINTING IN MEDICINE, 2022, 8 (01)
  • [3] 3D printing of nanocomposite pills through desktop vat photopolymerization (stereolithography) for drug delivery reasons
    Peeyush Kumar Sharma
    Dinesh Choudhury
    Vivek Yadav
    U. S. N. Murty
    Subham Banerjee
    3D Printing in Medicine, 8
  • [4] Desktop-Stereolithography 3D Printing of a Polyporous Extracellular Matrix Bioink for Bone Defect Regeneration
    Luo, Yunxiang
    Pan, Hao
    Jiang, Jiuzhou
    Zhao, Chenchen
    Zhang, Jianfeng
    Chen, Pengfei
    Lin, Xianfeng
    Fan, Shunwu
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2020, 8
  • [5] Stereolithography vs. PolyJet: Photopolymer 3D Printing Materials and Applications
    Graves, Andrew
    R&D MAGAZINE, 2016, 58 (01): : 14 - 17
  • [6] Selective Fluorination of the Surface of Polymeric Materials after Stereolithography 3D Printing
    Catterton, Megan A.
    Montalbine, Alyssa N.
    Pompano, Rebecca R.
    LANGMUIR, 2021, 37 (24) : 7341 - 7348
  • [8] 3D Printing of Polymer Nanocomposites via Stereolithography
    Manapat, Jill Z.
    Chen, Qiyi
    Ye, Piaoran
    Advincula, Rigoberto C.
    MACROMOLECULAR MATERIALS AND ENGINEERING, 2017, 302 (09)
  • [9] 3D Printing of Aramid Nanofiber Composites by Stereolithography
    Perera, Sachini D.
    Durand-Silva, Alejandra
    Remy, Ashele K.
    Diwakara, Shashini D.
    Smaldone, Ronald A.
    ACS APPLIED NANO MATERIALS, 2022, 5 (10) : 13705 - 13710
  • [10] 3D printing by stereolithography using thermal initiators
    Kam, Doron
    Rulf, Omri
    Reisinger, Amir
    Lieberman, Rama
    Magdassi, Shlomo
    NATURE COMMUNICATIONS, 2024, 15 (01)