# Reticular design and crystal structure determination of covalent organic frameworks

**Authors:** Ha L. Nguyen

PMC · DOI: 10.1039/d1sc00738f · Chemical Science · 2021-06-07

## TL;DR

This paper explains how covalent organic frameworks are designed and how their crystal structures are determined using various techniques.

## Contribution

The paper provides a comprehensive overview of reticular design and modern methods for determining COF crystal structures.

## Key findings

- Reticular design allows for the creation of diverse COF structures through controlled chemical bonding.
- Crystal structures of COFs can be elucidated using topological modeling and advanced diffraction techniques.
- The integration of multiple analytical methods enhances the accuracy of COF structure determination.

## Abstract

Reticular chemistry of covalent organic frameworks (COFs) deals with the linking of discrete organic molecular building units into extended structures adopting various topologies by strong covalent bonds. The past decade has witnessed a rapid development of COF chemistry in terms of both structural diversity and applications. From the structural perspective, irrespective of our subject of concern with regard to COFs, it is inevitable to take into account the structural aspects of COFs in all dimensions from 1D ribbons to 3D frameworks, for which understanding the concepts of reticular chemistry, based mainly on ‘reticular design’, will seemingly lead to unlimited ways of exploring the exquisiteness of this advanced class of porous, extended, and crystalline materials. A comprehensive discussion and understanding of reticular design, therefore, is of paramount importance so that everyone willing to research on COFs can interpret well and chemically correlate the geometrical structures of this subset of reticular materials and their practical applications. This article lies at the heart of using the conceptual basis of reticular chemistry for designing, modeling, and determination of novel infinite and crystalline structures. Especially, the structure determinations are described by means of chronological advances of discoveries and development of COFs whereby their crystal structures are elucidated by modeling through the topological approach, 3D electron diffraction, single-crystal X-ray diffraction, and powder X-ray diffraction techniques.

This article describes the conceptual basis of rational design in COF chemistry and comprehensively discusses the crystal structure determination of COFs using the topological approach, X-ray diffraction, and 3D electron diffraction.

## Full-text entities

- **Genes:** HCA1 (Hypercalciuria, absorptive, 1) [NCBI Gene 266790] {aka AH, HCA}, PTH (parathyroid hormone) [NCBI Gene 5741] {aka FIH1, PTH1}
- **Diseases:** COFs (MESH:D000092124), ED (MESH:D028361)
- **Cell lines:** UiO-66 — Mus musculus (Mouse), Malignant neoplasms of the mouse mammary gland, Cancer cell line (CVCL_9722), COF-505 — Homo sapiens (Human), Transformed cell line (CVCL_JE09)

## Full text

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## Figures

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## References

85 references — full list in the complete paper: https://tomesphere.com/paper/PMC8246139/full.md

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Source: https://tomesphere.com/paper/PMC8246139