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Stable synthesis of few-layered boron nitride nanotubes by anodic arc discharge

机译:阳极电弧放电稳定合成几层氮化硼纳米管

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摘要

Boron nitride nanotubes (BNNTs) were successfully synthesized by a dc arc discharge using a boron-rich anode as synthesis feedstock in a nitrogen gas environment at near atmospheric pressure. The synthesis was achieved independent of the cathode material suggesting that under such conditions the arc operates in so-called anodic mode with the anode material being consumed by evaporation due to the arc heating. To sustain the arc current by thermionic electron emission, the cathode has to be at sufficiently high temperature, which for a typical arc current density of ~100 A/cm2, is above the boron melting point (2350 K). With both electrodes made from the same boron-rich alloy, we found that the arc operation unstable due to frequent sticking between two molten electrodes and formation of molten droplets. Stable and reliable arc operation and arc synthesis were achieved with the boron-rich anode and the cathode made from a refractory metal which has a melting temperature above the melting point of boron. Ex-situ characterization of synthesized BNNTs with electron microscopy and Raman spectroscopy revealed that independent of the cathode material, the tubes are primarily single and double walled. The results also show evidence of root-growth of BNNTs produced in the arc discharge.
机译:氮化硼纳米管(BNNTs)是通过使用富硼阳极作为合成原料在接近大气压的氮气环境下通过直流电弧放电成功合成的。合成是独立于阴极材料完成的,这表明电弧在这种条件下以所谓的阳极模式运行,阳极材料由于电弧加热而被蒸发消耗。为了通过热电子发射来维持电弧电流,阴极必须处于足够高的温度下,对于典型的〜100 A / cm 2 电弧电流密度,阴极必须高于硼的熔点(2350) K)。使用相同的富硼合金制成的两个电极,我们发现由于两个熔融电极之间的频繁粘着和熔融液滴的形成,电弧操作不稳定。用富含硼的阳极和由难熔金属制成的阴极实现了稳定和可靠的电弧操作和电弧合成,所述难熔金属的熔融温度高于硼的熔点。用电子显微镜和拉曼光谱对合成的BNNT进行异位表征表明,与阴极材料无关,该管主要是单壁和双壁的。结果还显示出在电弧放电中产生的BNNT的根生长的证据。

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