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Eco-Friendly Lead-Free Solder Paste Printing via Laser-Induced Forward Transfer for the Assembly of Ultra-Fine Pitch Electronic Components

Current challenges in printed circuit board (PCB) assembly require high-resolution deposition of ultra-fine pitch components (<0.3 mm and <60 μm respectively), high throughput and compatibility with flexible substrates, which are poorly met by the conventional deposition techniques (e.g., sten...

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Autores principales: Makrygianni, Marina, Zacharatos, Filimon, Andritsos, Kostas, Theodorakos, Ioannis, Reppas, Dimitris, Oikonomidis, Nikolaos, Spandonidis, Christos, Zergioti, Ioanna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8235500/
https://www.ncbi.nlm.nih.gov/pubmed/34204373
http://dx.doi.org/10.3390/ma14123353
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author Makrygianni, Marina
Zacharatos, Filimon
Andritsos, Kostas
Theodorakos, Ioannis
Reppas, Dimitris
Oikonomidis, Nikolaos
Spandonidis, Christos
Zergioti, Ioanna
author_facet Makrygianni, Marina
Zacharatos, Filimon
Andritsos, Kostas
Theodorakos, Ioannis
Reppas, Dimitris
Oikonomidis, Nikolaos
Spandonidis, Christos
Zergioti, Ioanna
author_sort Makrygianni, Marina
collection PubMed
description Current challenges in printed circuit board (PCB) assembly require high-resolution deposition of ultra-fine pitch components (<0.3 mm and <60 μm respectively), high throughput and compatibility with flexible substrates, which are poorly met by the conventional deposition techniques (e.g., stencil printing). Laser-Induced Forward Transfer (LIFT) constitutes an excellent alternative for assembly of electronic components: it is fully compatible with lead-free soldering materials and offers high-resolution printing of solder paste bumps (<60 μm) and throughput (up to 10,000 pads/s). In this work, the laser-process conditions which allow control over the transfer of solder paste bumps and arrays, with form factors in line with the features of fine pitch PCBs, are investigated. The study of solder paste as a function of donor/receiver gap confirmed that controllable printing of bumps containing many microparticles is feasible for a gap < 100 μm from a donor layer thickness set at 100 and 150 μm. The transfer of solder bumps with resolution < 100 μm and solder micropatterns on different substrates, including PCB and silver pads, have been achieved. Finally, the successful operation of a LED interconnected to a pin connector bonded to a laser-printed solder micro-pattern was demonstrated.
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spelling pubmed-82355002021-06-27 Eco-Friendly Lead-Free Solder Paste Printing via Laser-Induced Forward Transfer for the Assembly of Ultra-Fine Pitch Electronic Components Makrygianni, Marina Zacharatos, Filimon Andritsos, Kostas Theodorakos, Ioannis Reppas, Dimitris Oikonomidis, Nikolaos Spandonidis, Christos Zergioti, Ioanna Materials (Basel) Article Current challenges in printed circuit board (PCB) assembly require high-resolution deposition of ultra-fine pitch components (<0.3 mm and <60 μm respectively), high throughput and compatibility with flexible substrates, which are poorly met by the conventional deposition techniques (e.g., stencil printing). Laser-Induced Forward Transfer (LIFT) constitutes an excellent alternative for assembly of electronic components: it is fully compatible with lead-free soldering materials and offers high-resolution printing of solder paste bumps (<60 μm) and throughput (up to 10,000 pads/s). In this work, the laser-process conditions which allow control over the transfer of solder paste bumps and arrays, with form factors in line with the features of fine pitch PCBs, are investigated. The study of solder paste as a function of donor/receiver gap confirmed that controllable printing of bumps containing many microparticles is feasible for a gap < 100 μm from a donor layer thickness set at 100 and 150 μm. The transfer of solder bumps with resolution < 100 μm and solder micropatterns on different substrates, including PCB and silver pads, have been achieved. Finally, the successful operation of a LED interconnected to a pin connector bonded to a laser-printed solder micro-pattern was demonstrated. MDPI 2021-06-17 /pmc/articles/PMC8235500/ /pubmed/34204373 http://dx.doi.org/10.3390/ma14123353 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Makrygianni, Marina
Zacharatos, Filimon
Andritsos, Kostas
Theodorakos, Ioannis
Reppas, Dimitris
Oikonomidis, Nikolaos
Spandonidis, Christos
Zergioti, Ioanna
Eco-Friendly Lead-Free Solder Paste Printing via Laser-Induced Forward Transfer for the Assembly of Ultra-Fine Pitch Electronic Components
title Eco-Friendly Lead-Free Solder Paste Printing via Laser-Induced Forward Transfer for the Assembly of Ultra-Fine Pitch Electronic Components
title_full Eco-Friendly Lead-Free Solder Paste Printing via Laser-Induced Forward Transfer for the Assembly of Ultra-Fine Pitch Electronic Components
title_fullStr Eco-Friendly Lead-Free Solder Paste Printing via Laser-Induced Forward Transfer for the Assembly of Ultra-Fine Pitch Electronic Components
title_full_unstemmed Eco-Friendly Lead-Free Solder Paste Printing via Laser-Induced Forward Transfer for the Assembly of Ultra-Fine Pitch Electronic Components
title_short Eco-Friendly Lead-Free Solder Paste Printing via Laser-Induced Forward Transfer for the Assembly of Ultra-Fine Pitch Electronic Components
title_sort eco-friendly lead-free solder paste printing via laser-induced forward transfer for the assembly of ultra-fine pitch electronic components
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8235500/
https://www.ncbi.nlm.nih.gov/pubmed/34204373
http://dx.doi.org/10.3390/ma14123353
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