论文标题

从HBN晶体的合成到用作光电设备的纳米片

From the synthesis of hBN crystals to their use as nanosheets for optoelectronic devices

论文作者

Maestre, Camille, Li, Yangdi, Garnier, Vincent, Steyer, Philippe, Roux, Sébastien, Plaud, Alexandre, Loiseau, Annick, Barjon, Julien, Ren, Lei, Robert, Cédric, Han, Bo, Marie, Xavier, Journet, Catherine, Toury, Bérangère

论文摘要

在2D材料的广阔世界中,六角硼(HBN)由于其出色的特性而占有特殊的位置。除了其热,化学和机械稳定性外,HBN还显示出高热导率,低压性和宽带间隙在6 eV附近,使其成为许多开创性应用的有前途的候选人,更专门针对光电设备。毫米尺度的六边形硝酸硼是通过互补的辅导陶瓷途径的互补耦合和压力控制的烧结过程组成的破坏性双重方法(PDC/PC)获得的。除了出色的化学和结晶质量外,这些晶体还表现出0.43 ns的自由激子寿命,这取决于时间分辨的阴极发光测量结果,证实了它们有趣的光学特性。为了进一步在应用领域,然后将HBN晶体去除角质,并使用由此产生的硝酸硼纳米片(BNNSS)封装过渡金属二北核化元素(TMDS)。这种范德华异质结构通过光谱测试。 BNNS在TMD的发射光谱范围内不发光,而在4K处的激子的光致发光宽度为2-3 MEV。所有这些结果表明,这些BNNS与未来的光电应用相关。

In the wide world of 2D materials, hexagonal boron nitride (hBN) holds a special place due to its excellent characteristics. In addition to its thermal, chemical and mechanical stability, hBN demonstrates high thermal conductivity, low compressibility, and wide band gap around 6 eV, making it promising candidate for many groundbreaking applications and more specifically for optoelectronic devices. Millimeters scale hexagonal boron nitride crystals are obtained through a disruptive dual method (PDC/PCS) consisting in a complementary coupling of the Polymer Derived Ceramics route and a Pressure-Controlled Sintering process. In addition to their excellent chemical and crystalline quality, these crystals exhibit a free exciton lifetime of 0.43 ns, as determined by time-resolved cathodoluminescence measurements, confirming their interesting optical properties. To go further in applicative fields, hBN crystals are then exfoliated, and resulting Boron Nitride NanoSheets (BNNSs) are used to encapsulate transition metal dichalcogenides (TMDs). Such van der Waals heterostructures are tested by optical spectroscopy. BNNSs do not luminesce in the emission spectral range of TMDs and the photoluminescence width of the exciton at 4K is in the range 2-3 meV. All these results demonstrate that these BNNSs are relevant for future opto-electronic applications.

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