In-situ synthesis of co-continuous aluminum-aluminum nitride composites by arc plasma induced accelerated displacement reaction
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In-situ synthesis of co-continuous aluminum-aluminum nitride composites by arc plasma induced accelerated displacement reaction

机译:通过电弧等离子体诱导加速位移反应的基出合成共连铝 - 氮化物复合材料

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AbstractWe investigate in-situ formation of co-continuous aluminum (Al)-aluminum nitride (AlN) composites with attractive mechanical and thermal properties by newly developed arc plasma-induced accelerated displacement reaction (APADR). The core innovation of the process is that it combines a simple pressureless infiltration with a thermodynamically favorable displacement reaction of silicon nitride (Si3N4) and molten Al under arc-plasma induced ultra-high temperature. The fast volume displacement nitridation via APADR resulted from improved wettability and enhanced diffusion of dissolved nitrogen. Thus, within a minute of APADR, Al matrix composites (AMCs) containing AlN over 50?vol% were successfully fabricated by the infiltration of Al melt into Si3N4particulate preforms with different particle size distributions. The microstructures of the composites exhibited co-continuous three-dimensional network structures with strong interfacial bonding and high interfacial thermal conductance, which resulted in a unique combination of relatively high flexural strength and high thermal conductivity. In particular, the AMCs containing nitrides of 73?vol% exhibited a low coefficient of thermal expansion, close to that of GaAs or GaN used for high-power semiconductor devices, which is the lowest value ever reported among the nitride reinforced AMCs. These results would give us a promising strategy for in-situ processing routes to fabricate continuous nitride reinforced AMCs with high dimensional and mechanical stability for heat spreader applications.Graphical abstractDisplay OmittedHighlights?We propose in-situ synthesis of co-continuous AlAlN composites via APADR process.?The process combines a pressureless infiltration with volume nitridation by APADR.?Within a minute of the process, Al composite with AlN over 50?vol% was fabricated.?The AlAlN composites exhibit 3D network structure with strong interfacial bonding.?The composites with tailored properties can be used for heat-spreader applications.]]>
机译:<![CDATA [ 抽象 我们调查原位形成共连铝(Al) - 氮化物(Aln)复合材料,具有吸引力通过新开发的电弧等离子体诱导的加速位移反应(APADR)进行机械和热性能。该过程的核心创新是,它将简单的无压渗透与氮化硅的热力学良好的位移反应相结合(Si 3 N 4 ”和Molten Al。通过APADR的快速容积熔融熔融产生改善的润湿性和增强的溶解氮的扩散。因此,在APADR的一分钟内,通过Al熔体进入Si 4 具有不同粒度分布的微粒预制件。复合材料的微观结构表现出具有强界面粘合和高界面热传导的共连三维网络结构,其具有相对高的弯曲强度和高导热率的独特组合。特别地,含有73〜73〜氮化物的AMC表现出低的热膨胀系数,接近用于高功率半导体器件的GaAs或GaN的含量,这是氮化物增强的AMC中有史以来的最低值。这些结果将为我们提供对原位加工途径的有希望的策略,以制造具有高尺寸和机械稳定性的连续氮化物加强的AMC,用于散热器应用。 图形抽象 显示省略 亮点 我们通过APADR过程建议原位合成共同连续的Alaln复合材料。 该过程将无压渗透与APADR的卷零熔体相结合。 < / ce:list-item> 在一分钟内该方法,Al复合用Aln超过50?Vol%。 alaln复合材料表现出3D网络结构,具有强大的界面键合。 具有定制属性的复合材料可用于散热器应用。 ]]>

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