Kudo Akira, Kanamaru Kazuya, Han Jiuhui, Tang Rui, Kisu Kazuaki, Yoshii Takeharu, Orimo Shin-Ichi, Nishihara Hirotomo, Chen Mingwei
WPI Advanced Institute for Materials Research (WPI-AIMR), Tohoku University, Sendai, 980-8577, Japan.
Institute of Multidisciplinary Research for Advanced Materials, Tohoku University, Sendai, 980-8577, Japan.
Small. 2023 Nov;19(47):e2301525. doi: 10.1002/smll.202301525. Epub 2023 Aug 2.
Hierarchically porous carbon microlattices (HPCMLs) fabricated by using a composite photoresin and stereolithography (SLA) 3D printing is reported. Containing magnesium oxide nanoparticles (MgO NPs) as porogens and multilayer graphene nanosheets as UV-scattering inhibitors, the composite photoresin is formed to simple cubic microlattices with digitally designed porosity of 50%. After carbonization in vacuum at 1000 °C and chemical removal of MgO NPs, it is realized that carbon microlattices possessing hierarchical porosity are composed of the lattice architecture (≈100 µm), macropores (≈5 µm), mesopores (≈50 nm), and micropores (≈1 nm). The linear shrinkage after pyrolysis is as small as 33%. Compressive strength of 7.45 to 10.45 MPa and Young's modulus of 375 to 736 MPa are achieved, proving HPCMLs a robust mechanical component among reported carbon materials with a random pore structure. Having a few millimeters in thickness, the HPCMLs can serve as thick supercapacitor electrodes that demonstrate gravimetric capacitances 105 and 13.8 F g in aqueous and organic electrolyte, reaching footprint areal capacitances beyond 10 and 1 F cm , respectively. The results present that the composite photoresin for SLA can yield carbon microarchitectures that integrate structural and functional properties for structural energy storages .
报道了通过使用复合光致抗蚀剂和立体光刻(SLA)3D打印制造的分级多孔碳微晶格(HPCML)。该复合光致抗蚀剂包含作为致孔剂的氧化镁纳米颗粒(MgO NPs)和作为紫外线散射抑制剂的多层石墨烯纳米片,形成了具有50%数字设计孔隙率的简单立方微晶格。在1000℃真空碳化并化学去除MgO NPs后,实现了具有分级孔隙率的碳微晶格由晶格结构(≈100μm)、大孔(≈5μm)、中孔(≈50nm)和微孔(≈1nm)组成。热解后的线性收缩率低至33%。实现了7.45至10.45MPa的抗压强度和375至736MPa的杨氏模量,证明HPCML是所报道的具有随机孔结构的碳材料中一种坚固的机械部件。HPCML厚度为几毫米,可作为厚超级电容器电极,在水性和有机电解质中分别表现出105和13.8F g的重量电容,分别达到超过10和1F cm的占地面积面积电容。结果表明,用于SLA的复合光致抗蚀剂可以产生用于结构储能的集成结构和功能特性的碳微结构。