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Covellite CuS nanocrystals: realizing rapid microwave-assisted synthesis in air and unravelling the disappearance of their plasmon resonance after coupling with carbon nanotubes

机译:铜蓝CuS纳米晶体:实现快速在空气和微波合成他们的等离子体解体消失共振耦合后的碳纳米管

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摘要

Semiconductor nanocrystals that show plasmonic resonance represent an emerging class of highly promising plasmonic materials with potential applications in diverse fields, such as sensing and optical and optoelectronic devices. We report a new approach to synthesizing homogeneous covellite CuS nanoplatelets in air and the almost complete disappearance of their plasmonic resonance once coupled with multiwalled carbon nanotubes (MWCNTs). These nanoplatelets were rapidly synthesized by a simple microwave-assisted approach at a relatively low reaction temperature in air, instead of under N-2 as reported previously. These less severe synthesis conditions were enabled by appropriately selecting a Cu precursor and preparing a precursor sulfur solution (instead of using solid sulfur) and by using microwave radiation as the heat source. The advantages of utilizing microwave irradiation, including uniform and rapid heating, became clear after comparing the results of the synthesis with those achieved using a conventional oil-bath method under N2. The CuS nanoplatelets prepared in this way showed very strong plasmon resonance at c. 1160 nm as a result of their free charge carriers at the calculated density of n(h) = 1.5 x 10(22) cm(-3) based on the Drude model. With the aim of exploring their potential for near-infrared responsive optoelectronic devices, they were hybridized with functionalized MWCNTs. Their strong plasmon resonance almost completely disappeared on hybridization. Detailed investigations excluded the effect of possible structural changes in the CuS nanoplatelets during the hybridization process and a possible effect on the plasmon resonance arising from the chemical bonding of surface ligands. Charge transfer was considered to be the main reason for the almost complete disappearance of the plasmon resonance, which was further confirmed by terahertz (THz) time-domain spectrometry and THz time-resolved spectrometry measurements performed on the CuS-MWCNT nanohybrids. By extracting the rising and relaxation constants through fitting a single-exponential rising function and a bi-exponential relaxation function, in combination with the results of THz differential transmission as a function of the NIR pump fluence, it was found that hole injection changed the electronic properties of the MWCNTs only subtly on a short picosecond time scale, whereas the nature of the band structure of the MWCNTs remained largely unchanged. These findings aid our understanding of recently emerging semiconductor plasmonics and will also help in developing practical applications.
机译:半导体纳米晶体显示电浆共振代表一个新兴阶级的高度有前途的电浆材料的潜力不同领域的应用,如传感和光学和光电设备。一种新的合成方法均匀铜蓝CuS nanoplatelets空气和几乎完整的电浆的消失共振一旦加上微碳纳米管(热合)。快速合成了一个简单的微波方法相对较低反应温度在空气中,而不是在n - 2先前报道。启用了合成条件适当的选择和一个铜的前兆准备一个前体硫(而不是解决方案使用固体硫磺),并通过使用微波炉辐射热源。利用微波辐射,包括制服,快速加热,之后变得清晰比较的结果与综合通过使用传统的油浴的方法在N2。在c方式显示很强的等离子体共振。1160海里的自由电荷载体在计算密度n (h) = 1.5 x 10 (22)厘米(3)基于柯克模型。探索他们的近红外的潜力响应的光电设备,他们杂化和功能化热合。强大的等离子体共振几乎完全消失在杂交。调查排除了可能的影响CuS nanoplatelets结构性变化在杂交过程中,一个可能的对产生的等离子体共振的影响表面配体的化学结合。转移被认为是主要原因等离子体的几乎完全消失共振,这进一步证实了太赫兹(太赫兹时域光谱法和太赫兹)时间分辨光谱法测量执行在CuS-MWCNT nanohybrids。通过拟合上升和放松常量单指数函数和一个上升bi-exponential松弛函数结合太赫兹微分的结果传播的功能近红外光谱泵影响,发现孔注入改变了碳管的电子性质巧妙地在一个简短的皮秒时间尺度,而碳管的能带结构的性质保持基本不变。我们对最近新兴的理解半导体等离子和还将帮助发展中实际应用。

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