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Structural and mechanical characterization of boron doped biphasic calcium phosphate produced by wet chemical method and subsequent thermal treatment

机译:湿化学法制备硼掺杂的双相磷酸钙的结构和力学特性及随后的热处理

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In the current study, boron doped biphasic calcium phosphate bioceramics consisting of a mixture of boron doped hydroxyapatite (BHA) and beta tricalcium phosphate (beta-TCP) of varying BHA/beta-TCP ratios were obtained after sintering stage. The effects of varying boron contents and different sintering temperatures on the BHA/beta-TCP ratios and on the sinterability of the final products were investigated. Particle sizes and morphologies of the obtained precipitates were determined using SEM. XRD and FTIR investigation were conducted to detect the boron formation in the structure of HA and quantitative analysis was performed to determine the BHA/beta-TCP ratio before and after sintering stage. In order to determine the sinterability of the obtained powders, pellets were prepared and sintered; the rates of densification were calculated and obtained results were correlated by SEM images. Also Vickers microhardness values of the sintered samples were determined. The experimental results verified that boron doped hydroxyapatite powders were obtained after sintering stage and the structure consists of a mixture of BHA and beta-TCP. As the boron content used in the precipitation stage increases, beta-TCP content of the BHA/beta-TCP ratio increases but sinterability, density and microhardness deteriorate. As the sintering temperature increases, beta-TCP content, density and microhardness of the samples increase and sinterability improves. (C) 2016 Elsevier Inc. All rights reserved.
机译:在当前的研究中,在烧结阶段之后获得了掺硼的双相磷酸钙生物陶瓷,该混合物由掺硼的羟基磷灰石(BHA)和比例不同的BHA /β-TCP的β-磷酸三钙(β-TCP)组成。研究了不同的硼含量和不同的烧结温度对BHA /β-TCP比和最终产品可烧结性的影响。使用SEM确定所获得的沉淀物的粒度和形态。进行了XRD和FTIR研究,以检测HA结构中硼的形成,并进行了定量分析以确定烧结前后的BHA /β-TCP比。为了确定所得粉末的可烧结性,制备并烧结粒料。计算了致密率,并通过SEM图像将获得的结果进行了关联。还确定了烧结样品的维氏显微硬度值。实验结果证明,烧结后可得到硼掺杂的羟基磷灰石粉末,其结构由BHA和β-TCP的混合物组成。随着沉淀阶段使用的硼含量的增加,BHA /β-TCP比率的β-TCP含量增加,但烧结性,密度和显微硬度降低。随着烧结温度的升高,样品的β-TCP含量,密度和显微硬度均增加,烧结性也得到改善。 (C)2016 Elsevier Inc.保留所有权利。

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