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LPCVD AND CHARACTERIZATION OF BORON-CONTAINING PYROCARBON MATERIALS

机译:LPCVD和表征含硼热碳材料

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Pyrocarbon materials containing various amounts of boron have been prepared by LPCVD from BCl3-C3H8-H-2 precursor mixtures. By increasing the BCl3/(C3H8 + BCl3) ratio up to 85%, the incorporation of boron can reach 33 at.%. A small amount of boron (e.g. 8 at.%) highly enhances the structural anisotropy of pyrocarbon, as evidenced by optical microscopy, X-ray diffraction and transmission electron microscopy (selected area diffraction and lattice fringes techniques). X-ray photoelectron spectroscopy has shown that a large fraction of the boron atoms are included by substitution in the carbon layers; the remaining boron atoms belong to a boron-rich amorphous part of the material. As the boron content increases beyond 8 at.%, the structural anisotropy of the boron-rich pyrocarbon decreases, due to the limited growth and stacking of the carbon layers. Also, amorphous boron-rich regions are more and more abundant as the total amount of boron increases. The oxidation resistance of the C(B) materials is better than that of pure pyrocarbon. This is mainly due to the improvement of the structural organization for the low boron content materials and to the coating of the whole material with a stable boron oxide for materials with a higher boron content. Copyright (C) 1996 Elsevier Science Ltd [References: 19]
机译:通过LPCVD已经从BCl 3 -C 3 H 8 -H-2前体混合物中制备了含有各种硼的热解碳材料。通过将BCl3 /(C3H8 + BCl3)比例提高到85%,硼的掺入量可达到33 at。%。光学显微镜,X射线衍射和透射电子显微镜(选择区域衍射和晶格条纹技术)证明,少量的硼(例如8 at。%)会大大提高热解碳的结构各向异性。 X射线光电子能谱显示,碳层中大部分的硼原子是通过取代而被包含的。其余的硼原子属于材料的富硼无定形部分。当硼含量增加超过8 at。%时,由于碳层的增长和堆积有限,富硼热解碳的结构各向异性降低。另外,随着硼总量的增加,非晶态富硼区域越来越丰富。 C(B)材料的抗氧化性优于纯热碳。这主要归因于低硼含量材料的结构组织的改善,以及高硼含量材料的整个材料均被稳定的氧化硼覆盖。版权所有(C)1996 Elsevier Science Ltd [参考:19]

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