Direct 3D Printing of Catalytically Active Structures

被引:51
|
作者
Manzano, J. Sebastian
Weinstein, Zachary B.
Sadow, Aaron D.
Slowing, Igor I. [1 ]
机构
[1] US DOE, Ames Lab, Ames, IA 50011 USA
来源
ACS CATALYSIS | 2017年 / 7卷 / 11期
关键词
3D printing; additive manufacturing; catalysis; polymeric materials; millifluidics; STABLE CARBONIUM-IONS; COOPERATIVE CATALYSIS; PERIODIC STRUCTURES; ALDOL CONDENSATION; CHEMICAL-SYNTHESIS; FUNCTIONAL-GROUPS; MANNICH REACTIONS; REACTIONWARE; MICROFLUIDICS; FABRICATION;
D O I
10.1021/acscatal.7b02111
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
3D printing of materials with active functional groups can provide custom-designed structures that promote chemical conversions. Herein, catalytically active architectures were produced by photo polymerizing bifunctional molecules using a commercial stereolithographic 3D printer. Functionalities in the monomers included a polymerizable vinyl group to assemble the 3D structures and a secondary group to provide them with active sites. The 3D-printed architectures containing accessible carboxylic acid, amine, and copper carboxylate functionalities were catalytically active for the Mannich, aldol, and Huisgen cycloaddition reactions, respectively. The functional groups in the 3D-printed structures were also amenable to postprinting chemical modification. As proof of principle, chemically active cuvette adaptors were 3D printed and used to measure in situ the kinetics of a heterogeneously catalyzed Mannich reaction in a conventional solution spectrophotometer. In addition, 3D printed millifluidic devices with catalytically active copper carboxylate complexes were used to promote azide-alkyne cycloaddition under flow conditions. The importance of controlling the 3D architecture of the millifluidic devices was evidenced by enhancing reaction conversion upon increasing the complexity of the 3D prints.
引用
收藏
页码:7567 / 7577
页数:11
相关论文
共 50 条
  • [1] Direct 3D printing of catalytically active structures
    Manzano, Juan
    Weinstein, Zachary
    Sadow, Aaron
    Slowing, Igor
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2018, 255
  • [2] 3D printing of ecologically active soil structures
    Barnes, S.
    Kirssin, L.
    Needham, E.
    Baharlou, E.
    Carr, D. E.
    Ma, J.
    [J]. ADDITIVE MANUFACTURING, 2022, 52
  • [3] 3D printing of ecologically active soil structures
    Barnes, S.
    Kirssin, L.
    Needham, E.
    Baharlou, E.
    Carr, D.E.
    Ma, J.
    [J]. Additive Manufacturing, 2022, 52
  • [4] Subtractive 3D Printing of Optically Active Diamond Structures
    Aiden A. Martin
    Milos Toth
    Igor Aharonovich
    [J]. Scientific Reports, 4
  • [5] Subtractive 3D Printing of Optically Active Diamond Structures
    Martin, Aiden A.
    Toth, Milos
    Aharonovich, Igor
    [J]. SCIENTIFIC REPORTS, 2014, 4
  • [6] Direct Printing of Antennas on Large 3D Printed Plastic Structures
    Gjokaj, Vincens
    Crump, Cameron
    Wright, Brian
    Chahal, Premjeet
    [J]. 2020 IEEE 70TH ELECTRONIC COMPONENTS AND TECHNOLOGY CONFERENCE (ECTC 2020), 2020, : 666 - 670
  • [7] COMPRESSIVE PROPERTIES OF AUXETIC STRUCTURES PRODUCED WITH DIRECT 3D PRINTING
    Koudelka, Petr
    Jirousek, Ondrej
    Fila, Tomas
    Doktor, Tomas
    [J]. MATERIALI IN TEHNOLOGIJE, 2016, 50 (03): : 311 - 317
  • [8] Printing Collagen 3D Structures
    Diaz Nocera, A.
    Salvatierra, N. A.
    Cid, M. P.
    [J]. VI LATIN AMERICAN CONGRESS ON BIOMEDICAL ENGINEERING (CLAIB 2014), 2014, 49 : 136 - 139
  • [9] 3D direct printing of mechanical and biocompatible hydrogel meta-structures
    Zhang, Lei
    Lee, Wenhan
    Li, Xinhao
    Jiang, Yanhui
    Fang, Nicholas Xuanlai
    Dai, Guohao
    Liu, Yongmin
    [J]. BIOACTIVE MATERIALS, 2022, 10 : 48 - 55
  • [10] Direct nanopatterning of 3D chemically active structures for biological applications
    Bretagnol, Frederic
    Valsesia, Andrea
    Sasaki, Takao
    Ceccone, Giacomo
    Colpo, Pascal
    Rossi, Francois
    [J]. ADVANCED MATERIALS, 2007, 19 (15) : 1947 - +