Synthesis of Fluorescent Carbon Quantum Dots and Their Application in the Plant Cell Imaging

Liyun Ding , Xingtui Wang , Junli Li , Jun Huang , Zhijie Li

Journal of Wuhan University of Technology Materials Science Edition ›› 2018, Vol. 33 ›› Issue (6) : 1546 -1550.

PDF
Journal of Wuhan University of Technology Materials Science Edition ›› 2018, Vol. 33 ›› Issue (6) : 1546 -1550. DOI: 10.1007/s11595-018-2004-8
Biomaterials

Synthesis of Fluorescent Carbon Quantum Dots and Their Application in the Plant Cell Imaging

Author information +
History +
PDF

Abstract

Carbon quantum dots (CQDs) exhibit tremendous advantages for plant growth study due to its strong fluorescence and good biocompatibility. The fluorescent CQDs were synthesized by the one-step microwave method with the raw materials of citric acid (CA) and urea (UR), and expressed a unique green fluorescence with the optimal excitation wavelength of over 400 nm through adjusting the doping of N elements. It is demonstrated that CQDs can act as deliver media in plant and fluorescent probes for plant cell imaging through directly cultivated in the seedlings of melon and wheat, respectively. Based on the effects of the fluorescent CQDs on plants growth, we can further study the mechanisms of the ions transport in plants.

Keywords

carbon quantum dots / plant cell imaging / microwave method

Cite this article

Download citation ▾
Liyun Ding, Xingtui Wang, Junli Li, Jun Huang, Zhijie Li. Synthesis of Fluorescent Carbon Quantum Dots and Their Application in the Plant Cell Imaging. Journal of Wuhan University of Technology Materials Science Edition, 2018, 33(6): 1546-1550 DOI:10.1007/s11595-018-2004-8

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Ju H. Sensitive Biosensing Strategy based on Functional Nanomaterials [J]. Science China Chemistry, 2011, 54(8): 1 202-1 217.

[2]

Zheng L, Hong F, Lu S, et al. Effect of Nano–TiO2 on Strength of Naturally Aged Seeds and Growth of Spinach[J]. Biological Trace Element Research, 2005, 104(1): 83-91.

[3]

Yiu HHP, Pickard MR, Olariu CI, et al. Fe3O4–PEI–RITC Magnetic Nanoparticles with Imaging and Gene Transfer Capability: Development of a Tool for Neural Cell Transplantation Therapies[J]. Pharmaceutical Research, 2011, 29(5): 1 328-1 343.

[4]

Aguilera–Sigalat J, Bradshaw D. Synthesis and Applications of Metal–organic Framework–quantum Dot (QD@MOF) Composites[J]. Coordination Chemistry Reviews, 2016, 307: 267-291.

[5]

Ding L, Zhang B, Xu C, et al. Fluorescent Glucose Sensing Using CdTe/CdS Quantum Dots–glucose Oxidase Complex[J]. Anal. Methods, 2016, 8(14): 2 967-2 970.

[6]

Gao F, Ma S, Li J, et al. Rational Design of High Quality Citric Acid–derived Carbon Dots by Selecting Efficient Chemical Structure Motifs [J]. Carbon, 2017, 112: 131-141.

[7]

Gong X, Lu W, Liu Y, et al. Low Temperature Synthesis of Phosphorous and Nitrogen co–doped Yellow Fluorescent Carbon Dots for Sensing and Bioimaging[J]. Journal of Materials Chemistry B, 2015, 3(33): 6 813-6 819.

[8]

Chen Q, Wang C, Chen S. One–step Synthesis of Yellow–emitting Carbogenic Dots toward White Light–emitting Diodes[J]. Journal of Materials Science, 2013, 48(6): 2 352-2 357.

[9]

Konwar A, Gogoi N, Majumdar G, et al. Green Chitosan–carbon Dots Nanocomposite Hydrogel Film with Superior Properties[J]. Carbohydrate Polymers, 2015, 115: 238-245.

[10]

Kasibabu BSB, DSouza SL, Jha S, et al. Imaging of Bacterial and Fungal Cells Using Fluorescent Carbon Dots Prepared from Carica papaya Juice[J]. Journal of Fluorescence, 2015, 25(4): 803-810.

[11]

Li X, Wang H, Shimizu Y, et al. Preparation of Carbon Quantum Dots with Tunable Photoluminescence by Rapid Laser Passivation in Ordinary Organic Solvents[J]. Chemical Communications (Cambridge, England), 2010, 47(3): 932-934.

[12]

Li L, Ji J, Fei R, et al. A Facile Microwave Avenue to Electrochemiluminescent Two–Color Graphene Quantum Dots[J]. Advanced Functional Materials, 2012, 22(14): 2 971-2 979.

[13]

Kang W, Ding Y, Zhou H, et al. Monitoring the Activity and Inhibition of Alkaline Phosphatase via Quenching and Restoration of the Fluorescence of Carbon Dots[J]. Microchimica Acta, 2015 161-1 167.

[14]

Yang X, Zhuo Y, Zhu S, et al. Novel and Green Synthesis of High–fluorescent Carbon Dots Originated from Honey for Sensing and Imaging [J]. Biosensors and Bioelectronics, 2014, 60: 292-298.

[15]

Bhaisare ML, Talib A, Khan MS, et al. Synthesis of Fluorescent Carbon Dots via Microwave Carbonization of Citric Acid in Presence of Tetraoctylammonium Ion, and Their Application to Cellular Bioimaging [J]. Microchimica Acta, 2015 173-2 181.

[16]

Zhou X, Li Z, LI Z. Fabrication of Valine–functionalized Graphene Quantum Dots and Its Use as a Novel Optical Probe for Sensitive and Selective Detection of Hg 2+[J]. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 2017, 171: 415-424.

[17]

Yu J, Song N, Zhang Y, et al. Green Preparation of Carbon Dots by Jinhua Bergamot for Sensitive and Selective Fluorescent Detection of Hg2+ and Fe3+[J]. Sensors and Actuators B: Chemical, 2015, 214: 29-35.

[18]

Namdari P, Negahdari B, Eatemadi A. Synthesis, Properties and Biomedical Applications of Carbon–based Quantum Dots: An Updated Review[J]. Biomedicine & Pharmacotherapy, 2017, 87: 209-222.

[19]

Ding C, Zhu A, Tian Y. Functional Surface Engineering of C–Dots for Fluorescent Biosensing and in vivo Bioimaging[J]. Accounts of Chemical Research, 2013, 47(1): 20-30.

AI Summary AI Mindmap
PDF

84

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/