Minki Choi, Jaeyoung Choi, Seonghun Choi, Jinsoo Kim, Sungmi Yoo, Jongmin Park, Minjae Ko, Yun Ho Kim, Jong Chan Won
Redistribution layers (RDLs) are key structural components in advanced semiconductor packaging, where materials must combine low dielectric constant ( D k ), photopatternability, and PFAS-free composition under low-temperature processing conditions. Conventional photosensitive polyimides (PSPIs), however, generally require thermal imidization above 350 °C and exhibit D k above 3.0, limiting their integration with fine-pitch RDL architectures. Herein, we report a series of designed soluble PSPIs synthesized from hydroxyl-containing diamines─3,3,3′,3′-Tetramethyl-1,1′-spirobisindane-5,5′-diamino-6,6′-diol (DHSBI), 9,9′-Bis(4-aminophenyl)-9H-fluorene-2,7-diol (APFD), and 2-Amino-4-[1-(3-amino-4-hydroxyphenyl)cyclohexyl]phenol (AACP)─modified with methyl methacrylate (MMA) groups to introduce both photoreactivity and dielectric tunability. The incorporation of bulky, low-polarity MMA-functionalized diamines increases free volume and reduces chain packing, leading to significantly lower permittivity ( D k = 2.67 @ 40 GHz) while enabling direct UV patterning without additional thermal imidization. These PSPIs exhibit excellent pattern fidelity down to 20 μm, strong Cu adhesion, and a low curing temperature of 250 °C. The rational design of MMA-grafted diamine monomers demonstrates a viable route to low- D k, photocurable, and environmentally sustainable PI systems for next-generation high-density semiconductor packaging.