研究目的
To develop a green and efficient method for the production of boron nitride nanosheets (BNNSs) via oxygen doping-facilitated liquid exfoliation, addressing the challenge of mass production and cost-effectiveness for industrial applications.
研究成果
The study successfully demonstrated a green and efficient method for producing BNNSs via oxygen doping-facilitated liquid exfoliation. The method significantly increases the yield of BNNSs without introducing new defects, offering a promising approach for mass production and industrial applications.
研究不足
The study focuses on the exfoliation of h-BN in water, which may not be applicable to all types of boron nitride materials. The scalability of the method and the uniformity of the produced BNNSs need further investigation.
1:Experimental Design and Method Selection
The study involved the thermal treatment of hexagonal boron nitride (h-BN) in air to introduce oxygen atoms into its structure, followed by liquid exfoliation in water. The relationship between thermal treatment, structural changes, and exfoliation efficiency was investigated.
2:Sample Selection and Data Sources
h-BN powder with an average particle size of 70 nm was used as the starting material. The treated samples were labeled based on the treatment temperature.
3:List of Experimental Equipment and Materials
Muffle furnace (Thermoconcept GmbH), Orbit?1000 multipurpose digital shaker (Labnet International, Inc.), ultrasonic bath (Rocker Scientific Co., Ltd.), Sorvall? ST 8 benchtop centrifuge (Thermo Fisher Scientific Inc.), and various characterization instruments including ATR FTIR spectrometer, XRD, SEM, AFM, TEM, and UV-VIS Spectrophotometer.
4:Experimental Procedures and Operational Workflow
h-BN powder was heat-treated in air at various temperatures, dispersed in water, exfoliated using ultrasonic bath, and centrifuged to separate BNNSs. The supernatant was analyzed for yield and properties.
5:Data Analysis Methods
The yield of BNNSs was determined by drying the supernatant. Characterization techniques included ATR FTIR, XRD, SEM, AFM, TEM, and UV-VIS spectroscopy to analyze the structural and optical properties of BNNSs.
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benchtop centrifuge
Sorvall? ST 8
Thermo Fisher Scientific Inc.
Used for separating BNNSs dispersion from large particles.
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XRD
Bruker D8 Advance
Bruker
Used for XRD analysis of samples.
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SEM
JEOL JSM6700F, JEOL FESEM JSM7600F
JEOL Ltd.
Used for SEM imaging of samples.
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AFM
Dimension ICON
Bruker
Used for AFM measurements of BNNSs.
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TEM
JEOL 2100
JEOL Ltd.
Used for TEM imaging of BNNSs.
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UV-VIS Spectrophotometer
UV-2450
Shimadzu Corporation
Used for absorbance characterization of BNNSs.
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muffle furnace
Thermoconcept GmbH
Used for thermal treatment of h-BN in air.
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multipurpose digital shaker
Orbit?1000
Labnet International, Inc.
Used for mixing h-BN (or h-BNO) powder in water.
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ultrasonic bath
Rocker Scientific Co., Ltd.
Used for exfoliating h-BN (or h-BNO) dispersion.
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ATR FTIR spectrometer
Bruker Vertex 80V
Bruker Singapore Pte. Ltd.
Used for ATR FTIR analysis of samples.
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