TY - JOUR
T1 - Evaluation of adsorption and mechanical strength of 13X zeolite mixtures with phyllosilicate binders using molecular dynamics simulation and positron annihilation spectroscopy
AU - Lau, Miu Lun
AU - Linton, Nathan
AU - Urban-Klaehn, Jagoda
AU - Guillen, Donna Post
AU - Long, Min
N1 - Funding Information:
This work was supported through the Idaho National Laboratory (INL) Laboratory Directed Research and Development (LDRD) Program under the U.S. Department of Energy Idaho Operations Office Contract DE-AC07-05ID14517. Student support for Nathan Linton was provided by the U.S. Department of Energy, Office of Science, Office of Workforce Development for Teachers and Scientists (WDTS) under the Science Undergraduate Laboratory Internships (SULI) program. Kari Perry assisted with pressing the zeolite pellets for the PALS study. Her internship at INL was supported by the Idaho IDeA Network of Biomedical Research Excellence (INBRE). This work also made use of the resources of the High Performance Computing Center at Idaho National Laboratory, which is supported by the Office of Nuclear Energy of the U.S. Department of Energy and the Nuclear Science User Facilities under Contract No. DE-AC07-05ID14517. Additional research reported in this publication was supported by the National Institute of General Medical Sciences of the National Institute of Health under Award Number P20GM-103474 and P20GM-103408. The content is solely the responsibility of the authors and does not necessarily represent the official views of the National Institutes of Health.
Publisher Copyright:
© 2023 Elsevier Ltd
PY - 2023/7/15
Y1 - 2023/7/15
N2 - There is growing interest in developing zeolites with novel internal structures that have optimal adsorptive capacity and high mechanical strength, while offering advantages, such as being light weight. We integrate computational and experimental methods to explore the effect of binder/zeolite types, and weight percentages on the mechanical strength of 13X zeolite and adsorption capacities of N2, H2O, and CO2 for additive manufacturing (AM) applications with the goal of maximizing both adsorption and strength. Zeolite 13X mixtures and phyllosilicate binders (either bentonite or kaolin) are combined using molecular dynamics (MD) simulations to create structures with various binder/zeolite weight percentages. Adsorption capabilities and mechanical strength are assessed using the grand canonical Monte Carlo (GCMC) and ReaxFF modules, respectively. Our modeling shows that an optimized zeolite/binder ratio for N2 adsorption is around 15 wt% for kaolin and roughly 10 wt% for bentonite. The resulting parameters can be applied to facilitate macro-scale computational fluid dynamics (CFD) and finite element method (FEM) simulations of an AM zeolite structure. We also performed Positron Annihilation Lifetime Spectroscopy (PALS) measurements on zeolite samples to explore the effect of changes in the internal volume. The results show an inverse relationship between the free volume and the solid loading. Adding a binder changes the morphology of the zeolite-binder compound and decreases open-volume area significantly.
AB - There is growing interest in developing zeolites with novel internal structures that have optimal adsorptive capacity and high mechanical strength, while offering advantages, such as being light weight. We integrate computational and experimental methods to explore the effect of binder/zeolite types, and weight percentages on the mechanical strength of 13X zeolite and adsorption capacities of N2, H2O, and CO2 for additive manufacturing (AM) applications with the goal of maximizing both adsorption and strength. Zeolite 13X mixtures and phyllosilicate binders (either bentonite or kaolin) are combined using molecular dynamics (MD) simulations to create structures with various binder/zeolite weight percentages. Adsorption capabilities and mechanical strength are assessed using the grand canonical Monte Carlo (GCMC) and ReaxFF modules, respectively. Our modeling shows that an optimized zeolite/binder ratio for N2 adsorption is around 15 wt% for kaolin and roughly 10 wt% for bentonite. The resulting parameters can be applied to facilitate macro-scale computational fluid dynamics (CFD) and finite element method (FEM) simulations of an AM zeolite structure. We also performed Positron Annihilation Lifetime Spectroscopy (PALS) measurements on zeolite samples to explore the effect of changes in the internal volume. The results show an inverse relationship between the free volume and the solid loading. Adding a binder changes the morphology of the zeolite-binder compound and decreases open-volume area significantly.
KW - Molecular adsorption
KW - Molecular dynamics
KW - Pore structure
KW - Positron annihilation lifetime spectroscopy
KW - Zeolite
UR - https://www.scopus.com/pages/publications/85153799759
UR - https://www.mendeley.com/catalogue/6bbe48a1-7477-39af-9aba-07d907d3b0ab/
U2 - 10.1016/j.ces.2023.118744
DO - 10.1016/j.ces.2023.118744
M3 - Article
AN - SCOPUS:85153799759
SN - 0009-2509
VL - 276
JO - Chemical Engineering Science
JF - Chemical Engineering Science
M1 - 118744
ER -