通过区块共聚碳酸盐的数字光处理来弥合聚合物架构,可打印性和性能
Krista G Schoonover1, Chia-Min Hsieh1, Mani Sengoden1
1Department of Chemistry, Texas A&M University 3255 TAMU College Station TX 77843 USA djdarens@chem.tamu.edu emilypentzer@tamu.edu.
在基于二氧化碳的亚利法性聚碳酸盐 (aPC) 中,量身定制单质比率和聚合物结构是数字光处理 (DLP) 增材制造的关键. 这种方法优化了可持续材料的机械性能和降解率.
科学领域:
- 聚合物化学 聚合物化学
- 材料科学 材料科学 材料科学
- 可持续的制造业 可持续的制造业
背景情况:
- 基于二氧化碳的亚利法性聚碳酸盐 (aPC) 提供可再生原料和可降解性.
- 修改aPC的机械性能仍然是特定应用的挑战.
研究的目的:
- 调查单体比率和聚合物结构如何影响aPCs的可打印性和性能.
- 探索aPCs在数字光处理 (DLP) 增材制造中的潜力.
主要方法:
- 环氧化物与二氧化碳的交替共聚化产生aPCs.
- 数字光处理 (DLP) 增材制造具有不同组成和架构的aPC.
- 热力学性能测试和水溶性降解研究.
主要成果:
- 块共聚合物 (BCP) 根据硬块含量表现出可调节的热力学特性,从弹性到脆性.
- 同聚合物混合物未能打印,而统计共聚物则表现出不良的机械性能和分层.
- 硬块含量较高的BCP打印件降解速度较慢;统计共聚合物降解速度比BCP慢.
结论:
- 单体比率和聚合物架构对于aPC树脂的可打印性和散装性能至关重要.
- 聚合物设计为增材制造中推进可持续材料提供了巨大的潜力.
- 量身定制的aPC可以通过DLP成功地制造成功能性对象.
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