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Low‐Thermal‐Budget Doping of 2D Materials in Ambient Air Exemplified by Synthesis of Boron‐Doped Reduced Graphene Oxide

机译:通过合成硼掺杂的石墨烯氧化物的环境空气中的2D材料的低热预算掺杂

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Graphene oxide (GO) doping and reduction allow for physicochemical property modification to suit practical application needs. Herein, the challenge of simultaneous low‐thermal‐budget heteroatom doping of GO and its reduction in ambient air is addressed through the synthesis of B‐doped reduced GO (B@rGO) by flash irradiation of boric acid loaded onto a GO support with intense pulsed light (IPL). The effects of light power and number of shots on the in‐depth sequential doping and reduction mechanisms are investigated by ex situ X‐ray photoelectron spectroscopy and direct millisecond‐scale temperature measurements (temperature 1600 °C, 10‐millisecond duration, ramping rate of 5.3 × 105 °C s?1). Single‐flash IPL allows the large‐scale synthesis of substantially doped B@rGO (≈3.60 at% B) to be realized with a thermal budget 106‐fold lower than that of conventional thermal methods, and the prepared material with abundant B active sites is employed for highly sensitive and selective room‐temperature NO2 sensing. Thus, this work showcases the great potential of optical annealing for millisecond‐scale ultrafast reduction and heteroatom doping of GO in ambient air, which allows the tuning of multiple physicochemical GO properties.
机译:石墨烯氧化物(GO)的掺杂和减少允许物理化学性质的修改,以适应实际应用的需要。这里,GO和其在环境空气中减少的同时低导热预算杂原子掺杂的挑战是通过B掺杂的合成处理减少GO(B @ RGO)通过装载到GO支撑激烈硼酸的闪光照射脉冲光(IPL)。光功率和拍摄次数的深入顺序掺杂和减速机构是由易地X射线光电子能谱法和直接毫秒级的温度测量(温度> 1600℃,<10毫秒的持续时间,斜坡研究的影响的5.3×105°(C S)?1)速率。单闪光IPL允许用一个热预算106倍比的常规热方法低,并且具有丰富乙活性位点所制备的材料来实现基本上掺杂B的@ RGO大规模合成(≈3.60原子%B)被用于高灵敏度和选择性室温NO2感测。因此,该工作为陈列柜毫秒级光退火超快在环境空气中的GO还原和掺杂的杂原子,它允许多个物理化学性质GO的调谐的巨大潜力。

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