1. Bagheri, Z., Ehtesabi, H., Rahmandoust, M., Ahadian, M. M., Hallaji, Z., Eskandari, F., & Jokar, E. (2017). New insight into the concept of carbonization degree in synthesis of carbon dots to achieve facile smartphone based sensing platform. Scientific reports, 7(1), 11013.
2. Ding, C., Zhu, A., & Tian, Y. (2013). Functional surface engineering of C-dots for fluorescent biosensing and in vivo bioimaging. Accounts of chemical research, 47(1), 20-30.
3. Emrani, A. S., Danesh, N. M., Lavaee, P., Ramezani, M., Abnous, K., & Taghdisi, S. M. (2016). Colorimetric and fluorescence quenching aptasensors for detection of streptomycin in blood serum and milk based on double-stranded DNA and gold nanoparticles. Food chemistry, 190, 115-121.
4. Yuan, F., Zhao, H., Wang, X., & Quan, X. (2017). Determination of Oxytetracycline by a Graphene—Gold Nanoparticle-Based Colorimetric Aptamer Sensor. Analytical Letters, 50(3), 544-553.
5. Zhou, Z., Wang, Q., Wang, J., & Zhang, C. C. (2015). Imaging two targets in live cells based on rational design of lanthanide organic structure appended carbon dots. Carbon, 93, 671-680.
6. Li, J., Ma, J., Chen, S., Huang, Y., & He, J. (2018). Adsorption of lysozyme by alginate/graphene oxide composite beads with enhanced stability and mechanical property. Materials Science and Engineering: C, 89, 25-32.
7. Udalova, A. Y., Dmitrienko, S. G., & Apyari, V. V. (2015). Methods for the separation, preconcentration, and determination of tetracycline antibiotics. Journal of Analytical Chemistry, 70(6), 661-676.
8. Feng, W., Ueda, E., & Levkin, P. A. (2018). Droplet Microarrays: From Surface Patterning to High‐Throughput Applications. Advanced Materials, 30(20), 1706111.
9. Pan, D., Zhang, J., Li, Z., & Wu, M. (2010). Hydrothermal route for cutting graphene sheets into blue‐luminescent graphene quantum dots. Advanced materials, 22(6), 734-738.
10. Zhou, C., He, X., Ya, D., Zhong, J., & Deng, B. (2017). One step hydrothermal synthesis of nitrogen-doped graphitic quantum dots as a fluorescent sensing strategy for highly sensitive detection of metacycline in mice plasma. Sensors and Actuators B: Chemical, 249, 256-264.
11. Ge, J., Lan, M., Zhou, B., Liu, W., Guo, L., Wang, H., ... & Meng, X. (2014). A graphene quantum dot photodynamic therapy agent with high singlet oxygen generation. Nature communications, 5, 4596.
12. Suryawanshi, A., Biswal, M., Mhamane, D., Gokhale, R., Patil, S., Guin, D., & Ogale, S. (2014). Large scale synthesis of graphene quantum dots (GQDs) from waste biomass and their use as an efficient and selective photoluminescence on–off–on probe for Ag+ ions. Nanoscale, 6(20), 11664-11670.
13. Kozak, O., Sudolska, M., Pramanik, G., Cigler, P., Otyepka, M., & Zboril, R. (2016). Photoluminescent carbon nanostructures. Chemistry of Materials, 28(12), 4085-4128.
14. Zhu, Z., Ma, J., Wang, Z., Mu, C., Fan, Z., Du, L., ... & Yang, S. (2014). Efficiency enhancement of perovskite solar cells through fast electron extraction: the role of graphene quantum dots. Journal of the American Chemical Society, 136(10), 3760-3763.
15. Ananthanarayanan, A., Wang, X., Routh, P., Sana, B., Lim, S., Kim, D. H., ... & Chen, P. (2014). Facile synthesis of graphene quantum dots from 3D graphene and their application for Fe3+ sensing. Advanced Functional Materials, 24(20), 3021-3026.
16. Bagheri, Z., Ehtesabi, H., Hallaji, Z., Latifi, H., & Behroodi, E. (2018). Investigation the cytotoxicity and photo-induced toxicity of carbon dot on yeast cell. Ecotoxicology and environmental safety, 161, 245-250.
17. Bagheri, Z., Ehtesabi, H., Hallaji, Z., Aminoroaya, N., Tavana, H., Behroodi, E., ... & Latifi, H. (2018). On-chip analysis of carbon dots effect on yeast replicative lifespan. Analytica chimica acta, 1033, 119-127.
18. Hunt, N. C., Hallam, D., Karimi, A., Mellough, C. B., Chen, J., Steel, D. H., & Lako, M. (2017). 3D culture of human pluripotent stem cells in RGD-alginate hydrogel improves retinal tissue development. Acta biomaterialia, 49, 329-343.
19. Vinson, B. T., Phamduy, T. B., Shipman, J., Riggs, B., Strong, A. L., Sklare, S. C., ... & Chrisey, D. B. (2017). Laser direct-write based fabrication of a spatially-defined, biomimetic construct as a potential model for breast cancer cell invasion into adipose tissue. Biofabrication, 9(2), 025013.
20. Gothard, D., Smith, E. L., Kanczler, J. M., Black, C. R., Wells, J. A., Roberts, C. A., ... & Rojo, L. (2015). In vivo assessment of bone regeneration in alginate/bone ECM hydrogels with incorporated skeletal stem cells and single growth factors. PloS one, 10(12), e0145080.
21. Longo, G. S., & Szleifer, I. (2016). Adsorption and protonation of peptides and proteins in pH responsive gels. Journal of Physics D: Applied Physics, 49(32), 323001.
22. Hu, Y., Chen, T., Dong, X., & Mei, Z. (2015). Preparation and characterization of composite hydrogel beads based on sodium alginate. Polymer Bulletin, 72(11), 2857-2869.
23. Alizadehgiashi, M., Khuu, N., Khabibullin, A., Henry, A., Tebbe, M., Suzuki, T., & Kumacheva, E. (2018). Nanocolloidal Hydrogel for Heavy Metal Scavenging. ACS nano, 12(8), 8160-8168.
24. Maity, S., Parshi, N., Prodhan, C., Chaudhuri, K., & Ganguly, J. (2018). Characterization of a fluorescent hydrogel synthesized using chitosan, polyvinyl alcohol and 9-anthraldehyde for the selective detection and discrimination of trace Fe3+ and Fe2+ in water for live-cell imaging. Carbohydrate polymers, 193, 119-128.
25. Javanbakht, S., Nazari, N., Rakhshaei, R., & Namazi, H. (2018). Cu-crosslinked carboxymethylcellulose/naproxen/graphene quantum dot nanocomposite hydrogel beads for naproxen oral delivery. Carbohydrate polymers, 195, 453-459.
26. Martín-Pacheco, A., Del Río Castillo, A. E., Martín, C., Herrero, M. A., Merino, S., García Fierro, J. L., ... & Vázquez, E. (2018). Graphene Quantum Dot–Aerogel: From Nanoscopic to Macroscopic Fluorescent Materials. Sensing Polyaromatic Compounds in Water. ACS applied materials & interfaces, 10(21), 18192-18201.
27. Picard, M., Thakur, S., Misra, M., & Mohanty, A. K. (2019). Miscanthus grass-derived carbon dots to selectively detect Fe 3+ ions. RSC advances, 9(15), 8628-8637.