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Localized optical-quality doping of graphene on silicon waveguides through a TFSA-containing polymer matrix

机译:通过TFSA的聚合物基质在硅波导上的石墨烯的局部光学质量掺杂

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The use of graphene in optical and photonic applications has gained much attention in recent years. To maximize the exploitation of graphene's extraordinary optical properties, precise control over its Fermi level ( e.g. by means of chemical doping) will be of vital importance. In this work, we show the usage of a versatile p-doping strategy based on the incorporation of bis(trifluoromethanesulfonyl)amide (TFSA), functioning as an active p-dopant molecule, into a poly(2,2,3,3,4,4,5,5-octafluoropentyl methacrylate) (POFPMA) polymer matrix. The TFSA/POFPMA dopant can be utilized both onto large size graphene regions via spin coating and on small predefined spatial zones of micrometer dimension by localized inkjet printing. Whereas pure TFSA suffers from a clustered layer deposition combined with environmental instability, the application of the POFPMA polymer matrix yields doping layers revealing superior properties counteracting the existing shortcomings of pure TFSA. A first key finding relates to the optical quality of the dopant layer. We obtain a layer with an extremely low surface roughness (0.4–0.8 nm/25 μm ~(2) ) while exhibiting very high transparency (absorbance <0.05%) over the 500–1900 nm wavelength range, with strongly enhanced doping stability as a function of time up to several weeks (for inkjet-printed deposition) and months (for spin coated deposition). Finally, the doping efficiency is very high, reaching a carrier density around +4 × 10 ~(13) cm ~(?2) whereas the optical transmission of a graphene-covered Si waveguide revealed a strong improvement (4.22 dB transmission increase per 100 μm graphene length at the wavelength of 1550 nm) after deposition of the dopant via inkjet printing.
机译:近年来,在光学和光子应用中使用石墨烯已经很多关注。为了最大限度地提高石墨烯的非凡光学性质,精确控制其费米水平(例如,通过化学掺杂)将是至关重要的。在这项工作中,我们展示了基于使双(三氟甲磺酰基)酰胺(TFSA)的掺入,作为活性P掺杂剂分子的掺入聚(2,2,3,3, 4,4,5,5-八氟戊基甲基丙烯酸酯)(POFPMA)聚合物基质。 TFSA / POFPMA掺杂剂可以通过旋涂和通过局部喷墨印刷的微米尺寸的小预定空间区域上的大尺寸石墨烯区上。虽然纯TFSA具有聚集层沉积与环境不稳定相结合,但POFPMA聚合物基质的应用产生掺杂层,揭示了优异的特性,抵消了纯TFSA的现有缺点。第一键发现涉及掺杂层的光学质量。我们获得具有极低表面粗糙度的层(0.4-0.8nm /25μm〜(2)),同时在500-1900nm波长范围内表现出非常高的透明度(吸光度<0.05%),具有强大地增强的掺杂稳定性时间可达几周(用于喷墨印刷沉积)和月份(用于旋涂沉积)。最后,掺杂效率非常高,达到载体密度左右+ 4×10〜(13)cm〜(?2),而石墨烯覆盖的Si波导的光学传输揭示了强大的改进(4.22 dB传输每100增加通过喷墨印刷沉积掺杂剂之后,μm石墨烯长度在1550nm的波长下。

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