首页> 外文期刊>Journal of biomedical materials research. Part B, Applied biomaterials. >Micropattern formation of apatite by combination of a biomimetic process and transcription of resist pattern
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Micropattern formation of apatite by combination of a biomimetic process and transcription of resist pattern

机译:通过仿生过程和抗蚀剂图案的转录相结合形成磷灰石微图案

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摘要

Two kinds of methods combining a biomimetic process and transcription of resist pattern were conducted to form an apatite micropattern. For method 1, apatite nuclei were formed on a resist pattern printed substrate by setting it in contact with CaO-SiO_2-based glass in a simulated body fluid (SBF) with inorganic ion concentrations nearly equal to those of human blood plasma. Next, apatite was grown from the nuclei by soaking the substrate in an aqueous solution with ion concentrations 1.5 times those of SBF (1.5 SBF). Then, the resist material was dissolved off by organic solvent with the apatite just formed on it. Apatite micropattern transcribing the resist pattern was obtained. For method 2, apatite nuclei were formed on a resist pattern printed substrate by setting it in contact with CaO-SiO_2-based glass in SBF. Next, the resist material was dissolved off with the apatite nuclei just formed on it. Then, the substrate was soaked in 1.5 SBF to grow the remaining nuclei and an apatite micropattern transcribing the resist pattern was obtained. For both methods, minute apatite patterns with various shapes as straight lines, bending lines, and blocks were clearly formed. The minimum line width of the obtained pattern was 2 mu m. These methods are promising for producing multifunctional materials with bioaffinity.
机译:结合仿生过程和抗蚀剂图案的复制的两种方法进行,以形成磷灰石微图案。对于方法1,通过在无机离子浓度接近于人体血浆浓度的模拟体液(SBF)中将其与基于CaO-SiO_2的玻璃接触,在抗蚀剂图案印刷基板上形成磷灰石核。接着,通过将基板浸入离子浓度为SBF(1.5 SBF)的1.5倍的水溶液中,从核中生长磷灰石。然后,通过有机溶剂溶解抗蚀剂材料,并在其上刚形成磷灰石。获得了覆盖抗蚀剂图案的磷灰石微图案。对于方法2,通过使其与SBF中的CaO-SiO_2基玻璃接触而在抗蚀剂图案印刷基板上形成磷灰石核。接着,将抗蚀剂材料溶解在刚形成的磷灰石核上。然后,将基板浸入1.5SBF中以生长剩余的核,并且获得了覆盖抗蚀剂图案的磷灰石微图案。对于这两种方法,清楚地形成了具有各种形状的细微磷灰石图案,例如直线,弯曲线和块状。所得图案的最小线宽为2μm。这些方法有望用于生产具有生物亲和力的多功能材料。

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