研究目的
Investigating the antibacterial activities of various 1T-phase TMDs including MoS2, WS2, and MoSe2 toward Gram-negative bacteria Escherichia coli and their bactericidal mechanisms.
研究成果
1T-phase TMD nanosheets, particularly WS2, exhibit significant antibacterial activity against E. coli through mechanisms involving oxidative stress (ROS-dependent and -independent), charge transfer, and physical membrane disruption. Transparent films of these materials show promise for antibacterial surfaces in biomedical and display applications, with high transparency and effective bactericidal properties.
研究不足
The study focuses on Gram-negative E. coli; applicability to other bacteria types may require further investigation. The experimental conditions (e.g., incubation time, concentration ranges) may not cover all potential scenarios, and the stability of the 1T-phase under long-term use in applications is not extensively addressed.
1:Experimental Design and Method Selection:
The study involved chemical intercalation-induced exfoliation using n-butyllithium to prepare 1T-phase TMD nanosheets. Antibacterial activities were evaluated using colony counting, live/dead staining, SEM imaging, oxidative stress measurements (XTT assay for ROS, Ellman's assay for GSH oxidation), and conductivity measurements via four-point probe.
2:Sample Selection and Data Sources:
E. coli DH5α was used as model bacteria. TMD powders (MoS2, WS2, MoSe2) were sourced from Sigma Aldrich.
3:List of Experimental Equipment and Materials:
Equipment included AFM (PSIA XE-100), Raman spectrometer (ARAMIS; Horiba Jobin Yvon), TEM (Tecnai G2 F30 S-Twin), SEM (Magellan400; FEI Company), four-point probe system (FPP-2400, DASOLENG), XPS (Sigma Probe, Thermo VG Scientific), UV–vis spectrophotometer (Scinco S-3100), confocal laser microscopy (Zeiss LSM 710), bath ultrasonicator (JAC Ultrasonic 2010), and Zetasizer Nano ZS (Malvern Instruments). Materials included n-butyllithium, SYTO 9, propidium iodide, XTT, GSH, DNTB, PBS, and cellulose membranes.
4:Experimental Procedures and Operational Workflow:
TMD nanosheets were prepared via lithium intercalation, exfoliation, and centrifugation. Antibacterial tests involved incubating E. coli with TMD dispersions, followed by viability assessment, staining, and imaging. Oxidative stress and conductivity measurements were performed as described. Transparent films were prepared by spin-coating on glass substrates.
5:Data Analysis Methods:
Data were analyzed using colony counts, fluorescence imaging, SEM morphology, absorbance measurements for ROS and GSH oxidation, and sheet resistance calculations for conductivity.
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Scanning Electron Microscopy
Magellan400
FEI Company
Morphology observation of bacterial cells
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Confocal Laser Microscopy
LSM 710
Zeiss
Live/dead fluorescent staining imaging
ZEISS LSM 990 Spectral Multiplex
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Zetasizer
Nano ZS
Malvern Instruments
Size distribution measurement of TMD nanosheets
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Atomic Force Microscopy
XE-100
PSIA
Surface topography analysis of TMD nanosheets
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Raman Spectrometer
ARAMIS
Horiba Jobin Yvon
Chemical functionalization analysis of TMD nanosheets
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Transmission Electron Microscopy
G2 F30 S-Twin
Tecnai
Morphology investigation of TMD nanosheets
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Four-Point Probe System
FPP-2400
DASOLENG
Sheet resistance measurements of TMD membranes
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X-ray Photoelectron Spectroscopy
Sigma Probe
Thermo VG Scientific
Chemical states analysis of TMD nanosheets
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UV–vis Spectrophotometer
S-3100
Scinco
Absorbance and transmittance measurements
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Bath Ultrasonicator
2010
JAC Ultrasonic
Exfoliation of TMD nanosheets
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