2021Macromolecular Rapid CommunicationsRequires access

Constructing Stable and Porous Covalent Organic Frameworks for Efficient Iodine Vapor Capture

Lipeng Zhai, Diandian Han, Jinhuan Dong, Wenqian Jiang, Riming Nie, Xiubei Yang, Xiaolong Luo, Zhongping Li

Open publisher page 55 citations

Abstract

Abstract Covalent organic frameworks (COF) with periodic porous structures and tunable functionalities are a new class of crystalline polymers connected via strong covalent bonds. Constructing COF materials with high stability and porosity is attracting and essential for COFs’ further functional exploration. In this work, two new covalent organic frameworks (TTA‐TMTA‐COF and TTA‐FMTA‐COF) with high surface area, large pore volume, and excellent chemical stability toward harsh conditions are designed and synthesized by integrating the methoxy functional groups into the networks. Both two COFs are further employed for iodine removal since radioactive iodine in nuclear waste has seriously threatened the natural environment and human health. TTA‐TMTA‐COF and TTA‐FMTA‐COF can capture 3.21 and 5.07 g g−1 iodine, respectively. Notably, the iodine capture capacity for iodine of TTA‐FMTA‐COF does not show any decline after being recycled five times. These results demonstrate both COFs possess ultrahigh capacity and excellent recyclability.

About this research paper

What this paper is about

Abstract Covalent organic frameworks (COF) with periodic porous structures and tunable functionalities are a new class of crystalline polymers connected via strong covalent bonds. Constructing COF materials with high stability and porosity is attracting and essential for COFs’ further functional exploration. In this work, two new covalent organic frameworks (TTA‐TMTA‐COF and TTA‐FMTA‐COF) with high surface area, large pore volume, and excellent chemical stability toward harsh conditions are designed and synthesized by integrating the methoxy functional groups into the networks. Both two COFs are further employed for iodine removal since radioactive iodine in nuclear waste has seriously threatened the natural environment and human health. TTA‐TMTA‐COF and TTA‐FMTA‐COF can capture 3.21 and 5.07 g g−1 iodine, respectively. Notably, the iodine capture capacity for iodine of TTA‐FMTA‐COF does not show any decline after being recycled five times. These results demonstrate both COFs possess ultrahigh capacity and excellent recyclability.

Why it matters

OpenAlex reports 55 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract Covalent organic frameworks (COF) with periodic porous structures and tunable functionalities are a new class of crystalline polymers connected via strong covalent bonds. Constructing COF materials with high stability and porosity is attracting and essential for COFs’ further functional exploration. In this work, two new covalent organic frameworks (TTA‐TMTA‐COF and TTA‐FMTA‐COF) with high surface area, large pore volume, and excellent chemical stability toward harsh conditions are designed and synthesized by integrating the methoxy functional groups into the networks. Both two COFs are further employed for iodine removal since radioactive iodine in nuclear waste has seriously threatened the natural environment and human health. TTA‐TMTA‐COF and TTA‐FMTA‐COF can capture 3.21 and 5.07 g g−1 iodine, respectively. Notably, the iodine capture capacity for iodine of TTA‐FMTA‐COF does not show any decline after being recycled five times. These results demonstrate both COFs possess ultrahigh capacity and excellent recyclability.

Key concepts: Covalent organic framework, Covalent bond, Porosity, Iodine, Materials science, Chemical stability, Chemical engineering, Polymer

Related papers

Back to paper searchBrowse research topicsOriginal source
Constructing Stable and Porous Covalent Organic Frameworks for Efficient Iodine Vapor Capture — Research Paper | ScholarLens