TY - JOUR
T1 - Integrating Hollow Metal-Organic Frameworks with Supercritical CO2
T2 - A Path to High-Performance Polystyrene Microcellular Foams
AU - Wang, Wenxiang
AU - Guo, Hongxin
AU - Ding, Yutong
AU - Chen, Zhou
AU - Yu, Ling
AU - Wu, Songdi
AU - Kuang, Tairong
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025
Y1 - 2025
N2 - Polymer foams, particularly those prepared using supercritical carbon dioxide (Sc-CO2), are extensively utilized in diverse applications like thermal insulation and packaging due to their lightweight and efficient properties. However, the effectiveness of Sc-CO2 foaming is often limited by low cell density and large cell size, mainly resulting from insufficient nucleation control and inadequate gas management. In this study, hollow metal-organic frameworks (MOFs) (HZIF-8) were introduced as effective nucleating agents in Sc-CO2-assisted polystyrene (PS) foaming. Owing to their unique hollow structure and high internal surface area, HZIF-8 significantly enhances gas adsorption and storage capacity, thereby improving nucleation efficiency during the foaming process. The results show that incorporating HZIF-8 into PS significantly increases the cell density (up to 1.4 × 109 cells cm−3) and decreases the average cell size (to 8.6 μm) under optimal foaming conditions (13.8 MPa, 100 °C). Compared to conventional ZIF-8 nanoparticles, the hollow structure of HZIF-8 facilitates more efficient CO2 uptake, leading to a finer microcellular morphology, more stable foam expansion, and enhanced mechanical properties. These results demonstrate the potential of hollow MOFs in creating high-performance microcellular foams, with promising applications in energy-efficient insulation, lightweight packaging, and functional materials.
AB - Polymer foams, particularly those prepared using supercritical carbon dioxide (Sc-CO2), are extensively utilized in diverse applications like thermal insulation and packaging due to their lightweight and efficient properties. However, the effectiveness of Sc-CO2 foaming is often limited by low cell density and large cell size, mainly resulting from insufficient nucleation control and inadequate gas management. In this study, hollow metal-organic frameworks (MOFs) (HZIF-8) were introduced as effective nucleating agents in Sc-CO2-assisted polystyrene (PS) foaming. Owing to their unique hollow structure and high internal surface area, HZIF-8 significantly enhances gas adsorption and storage capacity, thereby improving nucleation efficiency during the foaming process. The results show that incorporating HZIF-8 into PS significantly increases the cell density (up to 1.4 × 109 cells cm−3) and decreases the average cell size (to 8.6 μm) under optimal foaming conditions (13.8 MPa, 100 °C). Compared to conventional ZIF-8 nanoparticles, the hollow structure of HZIF-8 facilitates more efficient CO2 uptake, leading to a finer microcellular morphology, more stable foam expansion, and enhanced mechanical properties. These results demonstrate the potential of hollow MOFs in creating high-performance microcellular foams, with promising applications in energy-efficient insulation, lightweight packaging, and functional materials.
KW - heterogeneous nucleation
KW - hollow metal-organic framework
KW - polystyrene
KW - supercritical foaming
UR - http://www.scopus.com/inward/record.url?scp=105004034402&partnerID=8YFLogxK
U2 - 10.1002/adem.202500464
DO - 10.1002/adem.202500464
M3 - 文章
AN - SCOPUS:105004034402
SN - 1438-1656
JO - Advanced Engineering Materials
JF - Advanced Engineering Materials
ER -