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Increasing the doping efficiency by surface energy control for ultra-transparent graphene conductors

机译:通过表面能控制提高超透明石墨烯导体的掺杂效率

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摘要

Graphene’s attractiveness in many applications is limited by its high resistance. Extrinsic doping has shown promise to overcome this challenge but graphene’s performance remains below industry requirements. This issue is caused by a limited charge transfer efficiency (CTE) between dopant and graphene. Using AuCl3 as a model system, we measure CTE as low as 5% of the expected values due to the geometrical capacitance of small adsorbate clusters. We here demonstrate a strategy for enhancing the CTE by a two-step optimization of graphene’s surface energy prior to AuCl3 doping. First, exposure to UV ozone modified the hydrophilicity of graphene and was found to decrease the cluster’s geometric capacitance, which had a direct effect on the CTE. Occurrence of lattice defects at high UV exposure, however, deteriorated graphene’s transport characteristics and limited the effectiveness of this pretreatment step. Thus, prior to UV exposure, a functionalized polymer layer was introduced that could further enhance graphene’s surface energy while protecting it from damage. Combination of these treatment steps were found to increase the AuCl3 charge transfer efficiency to 70% and lower the sheet resistance to 106 Ω/γ at 97% transmittance which represents the highest reported performance for doped single layer graphene and is on par with commercially available transparent conductors.
机译:石墨烯在许多应用中的吸引力受到其高电阻的限制。非本征掺杂已显示出克服这一挑战的希望,但石墨烯的性能仍低于行业要求。此问题是由于掺杂剂和石墨烯之间的电荷转移效率(CTE)受限制而引起的。使用AuCl3作为模型系统,由于小吸附物簇的几何电容,我们测得的CTE低至预期值的5%。我们在这里演示了通过在AuCl3掺杂之前对石墨烯的表面能进行两步优化来提高CTE的策略。首先,暴露于紫外线臭氧会改变石墨烯的亲水性,并发现其会降低团簇的几何电容,这直接影响了CTE。但是,在高紫外线下会出现晶格缺陷,但会恶化石墨烯的传输特性,并限制了该预处理步骤的有效性。因此,在暴露于紫外线之前,引入了一种功能化的聚合物层,该层可以进一步增强石墨烯的表面能,同时保护其免受损坏。发现这些处理步骤的组合可将AuCl3的电荷转移效率提高到70%,并在97%的透射率下将薄层电阻降低到106Ω/γ,这代表了掺杂的单层石墨烯的最高报道性能,与市售透明材料相当指挥。

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