http://rdf.ncbi.nlm.nih.gov/pubchem/patent/EP-1998218-A1

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assignee http://rdf.ncbi.nlm.nih.gov/pubchem/patentassignee/MD5_e94e708dadc7e06262765b676d455e8b
classificationCPCInventive http://rdf.ncbi.nlm.nih.gov/pubchem/patentcpc/G02B5-201
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classificationIPCInventive http://rdf.ncbi.nlm.nih.gov/pubchem/patentipc/G02F1-1335
http://rdf.ncbi.nlm.nih.gov/pubchem/patentipc/G02B5-22
filingDate 2008-05-29-04:00^^<http://www.w3.org/2001/XMLSchema#date>
inventor http://rdf.ncbi.nlm.nih.gov/pubchem/patentinventor/MD5_cf6e0931abbbc45155047b1c1a84c013
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publicationDate 2008-12-03-04:00^^<http://www.w3.org/2001/XMLSchema#date>
publicationNumber EP-1998218-A1
titleOfInvention Surface energy control methods for color filter printing
abstract Black matrix (BM) material is deposited on glass (111) and patterned to form walls (120) that define an array of wells (130). Various surface treatments and masking schemes are utilized to achieve surface energy control of the BM glass. The surface treatments include one or more of chemically treating the BM walls (120) by depositing hydrophobic self-assembled monolayers (140) on the uppermost wall surfaces (125), and plasma treatments to control the surface energy of the various BM glass surfaces. Masking processes include backside exposure and development of photoresist, and maskless, self-aligned photo-patterning of the monolayers. Color filter ink (255) is then injected into each well (130) from an ink jet print head (200). The high surface energy of the lower (112) and side wall surfaces (122) facilitates wetting of the ink (255), and the low surface energy of the monolayers (140) prevents intermixing of ink (255) between adjacent wells (130). The ink (255) then dries to form a color filter (150) in each well (130).
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priorityDate 2007-05-30-04:00^^<http://www.w3.org/2001/XMLSchema#date>
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Total number of triples: 26.