Synthesis of 3D composite materials based on ultrathin LDH nanowalls grown in situ on graphene surface and fast-response NO2 gas sensing performance at room temperature†

IF 2.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY CrystEngComm Pub Date : 2024-11-22 DOI:10.1039/D4CE00773E
Changhe Guo, Chong Lin, Fangjie Qin, Yuanchao Wu, Rui Zhang, Li Li and Keying Shi
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Abstract

To enhance the gas sensing response performance of LDH materials, this study employed a hydrothermal synthesis method using sodium citrate as an inducer and urea as a precipitant. Graphene with excellent conductivity was used as a substrate. By controlling the solution's alkalinity, sheet-like NiFe-LDHs were successfully induced and assembled on the ultra-thin graphene surface. SEM and AFM characterizations confirmed that the flower-ball morphology of the LDHs, formed by the aggregation of nanosheets, created ultra-thin nanosheets of 6–8 nm that fully covered both sides of the 3–4 nm GO, rendering the material highly porous and well ordered (specific surface area of 111.39 m2 g−1). At ambient temperature (RH = 26%), the sample NF/rGO2 with 0.12 g of sodium citrate exhibited extremely high sensitivity and rapid response to 100 ppm NO2, with a response value and response/recovery time of 22.30 and 2.8/46 s, respectively. Moreover, the sensor demonstrated high selectivity and remarkable long-term stability for up to 100 days. The superior gas sensing performance can be attributed to the unique morphology of the composite material: the inhibited growth of LDHs on the graphene surface exposed numerous basic sites between layers, enhancing NO2 adsorption capability. Additionally, the staggered and orderly arrangement of ultra-thin LDHs significantly improved the electron transport rate. Therefore, the response/recovery time of the gas sensing material was considerably shortened, enhancing the gas sensing performance of the material. This study provides a novel approach for the preparation and synthesis of high-sensitivity and high-performance NO2 sensors at room temperature.

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基于石墨烯表面原位生长超薄LDH纳米壁的三维复合材料的合成及其室温下快速响应NO2气敏性能
为了提高LDH材料的气敏响应性能,本研究采用以柠檬酸钠为诱导剂,尿素为沉淀剂的水热合成方法。采用导电性能优异的石墨烯作为衬底。通过控制溶液的碱度,在超薄石墨烯表面成功诱导和组装了片状NiFe-LDHs。SEM和AFM表征证实,由纳米片聚集形成的LDHs的花球形态形成了6-8 nm的超薄纳米片,完全覆盖了3-4 nm氧化石墨烯的两侧,使材料具有高度多孔性和良好的有序性(比表面积为111.39 m2 g−1)。在环境温度(RH = 26%)下,添加0.12 g柠檬酸钠的样品NF/rGO2对100 ppm NO2具有极高的灵敏度和快速的响应,响应值和响应/恢复时间分别为22.30和2.8/46 s。此外,该传感器表现出高选择性和显著的长达100天的长期稳定性。优越的气敏性能可归因于复合材料的独特形态:抑制LDHs在石墨烯表面的生长,暴露出层间的许多碱性位点,增强了NO2吸附能力。此外,超薄LDHs的交错排列和有序排列显著提高了电子传递速率。因此,气敏材料的响应/恢复时间大大缩短,提高了材料的气敏性能。本研究为室温下制备和合成高灵敏度、高性能的二氧化氮传感器提供了一条新途径。
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来源期刊
CrystEngComm
CrystEngComm 化学-化学综合
CiteScore
5.50
自引率
9.70%
发文量
747
审稿时长
1.7 months
期刊介绍: Design and understanding of solid-state and crystalline materials
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