US 8530719B1
· Peterson et al.
· 2013
[cited by applicant]
US 20130018112A1
· Thielemans et al.
· 2013
[cited by applicant]
CN 110507848A
· 2019
[cited by applicant]
CN 110872386A
· 2020
[cited by applicant]
CN 113477229A
· 2021
[cited by applicant]
WO WO2021011740A1
· 2021
[cited by applicant]
Moon et al., “Detoxification of Chemical Warfare Agents Using a Zr6-Based Metal-Organic Framework/Polymer Mixture,” Chemistry—A European Journal; vol. 22 , Issue 42 (Oct. 2016); pp. 14864-14868.
[cited by examiner]
Peppas et al., “Hydrogels” Polymer Science: A Comprehensive Reference, vol. 9, (2012), pp. 385-395.
[cited by examiner]
Cheng Wang et al., “Polyethyleneimine-crosslinked cellulose aerogel for combustion CO2 capture,”
[cited by applicant]
Derek B. Dwyer et al., Toxic Organophosphate Hydroplysis Using Nanofiber-Templated UiO-66-NH2 Metal-Organic Framework Polycrystalline Cylinders,
[cited by applicant]
Cong Huang et al., “Preparation of iron-based metal-organic framework @cellulose aerogel by in situ growth method and its application to dye adsorption,”
[cited by applicant]
Xiaoting Ma et al., “Multifunctional flexible composite aerogels constructed through in-situ growth of metal-organic framework nanoparticles on bacterial cellulose,”
[cited by applicant]
The International Search Report and Written Opinion issued on Mar. 12, 2021 for international application No. PCT/US20/62800; pp. 1-11.
[cited by applicant]
Kim, “Self-Exfoliating and Reactive Polymer (SERP) as a Protection Against Chemical Warfare Agents (CWAs);” Doctoral Dissertation, University of Massachusetts Amherst, Department of Polymer Science and Engineering (Sep.…
[cited by applicant]
Kim et al., “Zirconium Hydroxide-coated Nanofiber Mats for Nerve Agent Decontamination;”
[cited by applicant]
Joseph E. Mondloch et al., “Destruction of chemical warfare agents using metal-organic frameworks,”
[cited by applicant]
D. Banerjee et al., “Potential of Metal-Organic Frameworks for Separation of Xenon and Krypton,”
[cited by applicant]
Olaf Delgado-Friedrichs et al., “Three-periodic nets and tilings: edge-transitive binodal structures,” Acta Cryst. (2006), vol. A62; pp. 350-355. doi:10.1107/S0108767306022707.
[cited by applicant]
Tian-Fu Liu et al., “Adding to the Arsenal of Zirconium-Based Metal-Organic Frameworks: the Topology as a Platform for Solvent-Assisted Metal Incorporation,”
[cited by applicant]
Dawei Feng et al., “A Highly Stable Porphyrinic Zirconium Metal-Organic Framework with shp—a Topology,”
[cited by applicant]
Zhujie Chen et al., “Toward base heterogenization: A zirconium metal-organic framework/dendrimer or polymer mixture for rapid hydrolysis of a nerve-agent simulant.”
[cited by applicant]
Chen, Zhijie, et al. “Applying the power of reticular chemistry to finding the missing alb-MOF platform based on the (6, 12)-coordinated edge-transitive net.”
[cited by applicant]
Chen, Zhijie, et al. “Reticular access to highly porous acs-MOFs with rigid trigonal prismatic linkers for water sorption.”
[cited by applicant]
Wang, Bin, et al. “Highly stable Zr (IV)-based metal-organic frameworks for the detection and removal of antibiotics and organic explosives in water.”
[cited by applicant]
Chen, Zhijie, et al. “Minimal edge-transitive nets for the design and construction of metal-organic frameworks.”
[cited by applicant]
Lyu, Jiafei, et al. “Topology and porosity control of metal-organic frameworks through linker functionalization.”
[cited by applicant]
Li, Penghao, et al. “Interpenetration Isomerism in Triptycene-Based Hydrogen-Bonded Organic Frameworks.”
[cited by applicant]
DeCoste, Jared B., and Gregory W. Peterson. “Metal-organic frameworks for air purification of toxic chemicals.”
[cited by applicant]
Palomba, Joseph M., et al. “High-throughput screening of solid-state catalysts for nerve agent degradation.”
[cited by applicant]
Gil-San-Millan, Rodrigo, et al. “Chemical warfare agents detoxification properties of zirconium metal-organic frameworks by synergistic incorporation of nucleophilic and basic sites.”
[cited by applicant]
Peng Li et al., “Synthesis of nanocrystals of Zr-based metal-organic frameworks with csq-net: significant enhancement in the degradation of a nerve agent simulant,”
[cited by applicant]
The International Search Report and the Written Opinion issued Nov. 24, 2020 for international patent application No. PCT/US20/42271; pp. 1-10.
[cited by applicant]
Joseph E. Mondloch et al., “Destruction of chemical warfare agents using metal-organic frameworks,”
[cited by applicant]
Michael J. Katz et al., “Simple and Compelling Biomimetic Metal-Organic Framework Catalyst for the Degradation of Nerve Agent Simulants,”
[cited by applicant]
Su-Young Moon et al., “Instantaneous Hydrolysis of Nerve-Agent Simulants with a Six-Connected Zirconium-Based Metal-Organic Framework,”
[cited by applicant]
Junjie Zhao et al., Ultra-Fast Degradation of Chemical Warfare Agents Using MOF-Nanotiber Kebabs,
[cited by applicant]
Annie Xi Lu et al., “MOFabric: Electrospun Nanofiber Mats from PVDF/UiO-66-NH2 for Chemical Protection and Decontamination,”
[cited by applicant]
Hiroyasu Furukawa et al., “Water Adsorption in Porous Metal-Organic Frameworks and Related Materials,”
[cited by applicant]
Moon, Su-Young, et al. “Detoxification of Chemical Warfare Agents Using a Zr6-Based Metal-Organic Framework/Polymer Mixture.”
[cited by applicant]
Zhijie Chen et al., Supporting Information for “Toward base heterogenization: A zirconium metal-organic framework/dendrimer or polymer mixture for rapid hydrolysis of a nerve-agent simulant.”
[cited by applicant]
Chen, Haoyuan, et al. “Insights into Catalytic Hydrolysis of Organophosphate Warfare Agents by Metal-Organic Framework NU-1000.”
[cited by applicant]
Chen, Zhijie, et al. “Ligand-Directed Reticular Synthesis of Catalytically Active Missing Zirconium-Based Metal-Organic Frameworks.”
[cited by applicant]
De Koning, Martijn C., Marco van Grol, and Troy Breijaert. “Degradation of Paraoxon and the Chemical Warfare Agents VX, Tabun, and Soman by the Metal-Organic Frameworks UiO-66-NH2, MOF-808, NU-1000, and PCN-777.”
[cited by applicant]
López-Maya, Elena, et al. “Textile/Metal-Organic-Framework Composites as Self-Detoxifying Filters for Chemical-Warfare Agents.”
[cited by applicant]
Momeni, Mohammad R., and Christopher J. Cramer. “Dual Role of Water in Heterogeneous Catalytic Hydrolysis of Sarin by Zirconium-Based Metal-Organic Frameworks.”
[cited by applicant]
Park, Hea Jung, et al. “Synthesis of a Zr-Based Metal-Organic Framework with Spirobifluorenetetrabenzoic Acid for the Effective Removal of Nerve Agent Simulants.”
[cited by applicant]
Rose, Marcus, et al. “MOF processing by electrospinning for functional textiles.”
[cited by applicant]
Wang, Hui, et al. “Solid-Phase Detoxification of Chemical Warfare Agents using Zirconium-based Metal Organic Frameworks and the Moisture Effects-Analyze via Digestion.”
[cited by applicant]
Zhang, Yuanyuan, et al. “Preparation of nanofibrous metal-organic framework filters for efficient air pollution control.”
[cited by applicant]
Timur Islamoglu et al., “Presence vs. proximity: the role of pendant amines in the catalytic hydrolysis of a nerve agent simulant,” Communication Wiley-VCH; pp. 1-5.
[cited by applicant]
Chen, Znijie, et al. “Integration of metal-organic frameworks on protective layers for destruction of nerve agents under relevant conditions.”
[cited by applicant]
Liu, Yangyang, et al. “Catalytic degradation of chemical warfare agents and their simulants by metal-organic frameworks.”
[cited by applicant]