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氮氧桥联杯芳烃:合成、结构、功能化及分子识别。

Nitrogen and oxygen bridged calixaromatics: synthesis, structure, functionalization, and molecular recognition.

机构信息

The Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology, Department of Chemistry, Tsinghua University, Beijing, China.

出版信息

Acc Chem Res. 2012 Feb 21;45(2):182-95. doi: 10.1021/ar200108c. Epub 2011 Aug 11.

DOI:10.1021/ar200108c
PMID:21834499
Abstract

Pedersen, Lehn, and Cram established supramolecular chemistry through their pioneering work with crown ethers, cryptands, and spherands. Since then, the hallmark of supramolecular science has been an increasing sophistication in the design and construction of macrocyclic molecules, as manifested in cyclodextrin derivatives, calixarenes, resorcinarenes, cyclotriveratrylenes, cucurbiturils, calixpyrroles, cyclophanes, and many other examples. Indeed, macrocyclic compounds provide unique models for the study of noncovalent molecular interactions. They also constitute building blocks for constructing high-level molecular and supramolecular architectures and fabricating molecular devices and advanced materials. As a postgraduate in the Huang laboratory in the late 1980s, I became interested in the calix[n]arenes because of their unique conformational structures and versatile complexation properties. The notion of introducing heteroatoms, and particularly nitrogen, into the bridging position of conventional calixarenes was particularly intriguing. Nitrogen, unlike methylene, can adopt either an sp(2) or sp(3) electronic configuration, providing different conjugation systems with adjacent aromatic rings. Consequently, depending on the configuration and conjugation, a range of C-N bond lengths and C-N-C bond angles is possible. The conformation and cavity size in heteroatom-bridged calixarenes might thus be tuned through the bridging heteroatoms and the number of aromatic rings. Furthermore, because heteroatom linkages significantly affect the electron density and distribution on aromatic rings, the electronic features of macrocyclic cavities might be regulated by heteroatoms. Given the essentially limitless combinations possible, only synthetic hurdles would prevent access to numerous diverse heteracalixaromatics. We began a systematic study on nitrogen- and oxygen-bridged calixarenes in 2000, years later than originally envisioned. Before this study, very few heteracalixaromatics had been reported, owing to the formidable synthetic challenges involved. Apart from thiacalixarene, the synthesis of nitrogen- and oxygen-bridged calixarenes appeared very difficult. But since our first publications in 2004, we have been delighted to see the rapid and tremendous development of the supramolecular chemistry of this new generation of macrocycles. In this Account, I summarize the synthesis of N- and O-bridged calixaromatics and their regiospecific functionalization on the rims and bridging positions, focusing on the fragment coupling approach and contributions from our laboratory. I describe the construction of molecular cages based on heteracalixaromatics and discuss the effect of both bridging heteroatoms and substituents on macrocyclic conformations and cavity sizes. Molecular recognition of neutral organic molecules and charged guest species is also demonstrated. The easy accessibility, rich molecular diversity, unique conformation, and cavity tunability of heteracalixaromatics make them invaluable macrocycles for research in supramolecular chemistry. New heteracalixaromatics, with well-defined conformations and cavity properties, will provide powerful tools for probing noncovalent interactions, leading to the development of new molecular sensing and imaging systems. Multicomponent molecular self-assembly of heteracalixaromatics as functional modules with metals, metal clusters, or charge-neutral species should result in multidimensional solid and soft materials with diverse applications. The profitable incorporation of heteracalixaromatics into molecular devices can also be anticipated in the future. Moreover, the construction of enantiopure, inherently chiral heteracalixaromatics should provide important applications in chiral recognition and asymmetric catalysis.

摘要

佩德森、莱恩和克拉姆通过他们在冠醚、cryptands 和 spherands 方面的开创性工作建立了超分子化学。从那时起,超分子科学的标志是大环分子设计和构建的日益复杂化,这体现在环糊精衍生物、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃、杯芳烃

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Catalytic enantioselective synthesis of inherently chiral calix[4]arenes via organocatalyzed aromatic amination enabled desymmetrization.通过有机催化的芳香胺化反应实现固有手性杯[4]芳烃的催化对映选择性合成去对称化。
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Simultaneous construction of inherent and axial chirality by cobalt-catalyzed enantioselective C-H activation of calix[4]arenes.
通过钴催化杯[4]芳烃的对映选择性C-H活化同时构建固有手性和轴手性
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Inherently chiral nor-heteracalixarenes: design and synthesis enantioselective intramolecular Suzuki-Miyaura reaction.固有手性去杂杯芳烃:设计、合成及对映选择性分子内铃木-宫浦反应
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Influence of halogen-halogen interactions in the self-assembly of pillar[5]arene-based supramolecular polymers.卤素-卤素相互作用对基于柱[5]芳烃的超分子聚合物自组装的影响。
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synthesis of inherently chiral heteracalix[4]aromatics from enantioselective macrocyclization enabled by chiral phosphoric acid-catalyzed intramolecular SAr reaction.通过手性磷酸催化的分子内亲核芳香取代反应实现对映选择性大环化,从而合成固有手性杂杯[4]芳烃。
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RETRACTED: Synthesis and Properties of Novel Alkyl-Substituted Hexaazacyclophanes and Their Diradical Dications.撤回:新型烷基取代六氮杂环蕃及其双自由基双阳离子的合成与性质
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Self-similar chiral organic molecular cages.自相似手性有机分子笼
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Inherently chiral calixarenes by a catalytic enantioselective desymmetrizing cross-dehydrogenative coupling.通过催化对映选择性去对称化交叉脱氢偶联反应合成固有手性杯芳烃
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Design, synthesis and applications of responsive macrocycles.响应性大环化合物的设计、合成与应用
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