论文标题

在环境条件下可回收的CN4四面体的三维框架的超不可压缩氮化物的合成

Synthesis of Ultra-Incompressible Carbon Nitrides Featuring Three-Dimensional Frameworks of CN4 Tetrahedra Recoverable at Ambient Conditions

论文作者

Laniel, Dominique, Trybel, Florian, Aslandukov, Andrey, Khandarkhaeva, Saiana, Fedotenko, Timofey, Yin, Yuqing, Tasnádi, Ferenc, Ponomareva, Alena V., Weck, Gunnar, Akbar, Fariia Iasmin, Winkler, Bjoern, Néri, Adrien, Chariton, Stella, Giacobbe, Carlotta, Wright, Jonathan, Garbarino, Gaston, Wehinger, Björn, Pakhomova, Anna, Mezouar, Mohamed, Prakapenka, Vitali, Milman, Victor, Schnick, Wolfgang, Abrikosov, Igor A., Dubrovinsky, Leonid, Dubrovinskaia, Natalia

论文摘要

三十多年前,具有四面体CN4单位的3D框架的碳氮化物被确定为材料科学的巨大愿望之一,预计具有比钻石更大或可比的硬度。从那时起,就没有提供明确的实验证据。在这里,我们报告了在激光加热的钻石小动脉细胞中长期以来的高压高温合成的高压高温合成。使用同步加速器单晶X射线衍射来解决和精制它们的结构。在这些固体中,碳原子,所有SP3杂交和氮原子都完全饱和,分别形成四个和三个共价键,导致角落共享CN4四面体的三维排列。这些碳氮具有超压缩性,HP126-C3N4和Ti24-CN2甚至使Diamond的不可压缩性和超雄性与超级智能相抗衡。这些新型化合物可以结晶形式回收到环境条件,并在空气中化学稳定。作为宽带间隙的半导体,其电子结构具有有趣的特征,除了其机械性能外,它们将表现出多种特殊功能,并为材料科学开辟了新的观点。

More than thirty years ago, carbon nitrides featuring 3D frameworks of tetrahedral CN4 units were identified as one of the great aspirations of materials science, expected to have a hardness greater than or comparable to diamond. Since then, no unambiguous experimental evidence of their existence has been delivered. Here, we report the high-pressure high-temperature synthesis of the long-sought-after covalent carbon nitrides, tI14-C3N4, hP126-C3N4, and tI24-CN2, in laser-heated diamond anvil cells. Their structures were solved and refined using synchrotron single-crystal X-ray diffraction. In these solids, carbon atoms, all sp3-hybridized, and nitrogen atoms are fully saturated, forming four and three covalent bonds, respectively, leading to three-dimensional arrangements of corner-sharing CN4 tetrahedra. These carbon nitrides are ultra-incompressible, with hP126-C3N4 and tI24-CN2 even rivalling diamond's incompressibility, and superhard. These novel compounds are recoverable to ambient conditions in crystalline form and chemically stable in air. Being wide-band gap semiconductors with intriguing features in their electronic structure, they are expected to exhibit multiple exceptional functionalities besides their mechanical properties, opening new perspectives for materials science.

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