Smith, B. R.; Gambhir, S. S. Nanomaterials for In Vivo Imaging. Chem. Rev. 2017, 117, 901-986, 10.1021/acs.chemrev.6b00073
Hutchison, J. E. The Road to Sustainable Nanotechnology: Challenges, Progress and Opportunities. ACS Sustainable Chem. Eng. 2016, 4, 5907-5914, 10.1021/acssuschemeng.6b02121
Cinelli, M.; Coles, S. R.; Nadagouda, M.; Blaszczynski, J.; Slowinski, R.; Varma, R. S.; Kirwan, K. A Green Chemistry-Based Classification Model for the Synthesis of Silver Nanoparticles. Green Chem. 2015, 17, 2825-2839, 10.1039/C4GC02088J
Varma, R. S. Greener and Sustainable Trends in Synthesis of Organics and Nanomaterials. ACS Sustainable Chem. Eng. 2016, 4, 5866-5878, 10.1021/acssuschemeng.6b01623
Wang, F.; Tang, R.; Yu, H.; Gibbons, P. C.; Buhro, W. E. Size-and shape-controlled synthesis of bismuth nanoparticles. Chem. Mater. 2008, 20, 3656-3662, 10.1021/cm8004425
Wang, J.; Wang, X.; Peng, Q.; Li, Y. Synthesis and characterization of bismuth single-crystalline nanowires and nanospheres. Inorg. Chem. 2004, 43, 7552-7556, 10.1021/ic049129q
Xia, F.; Xu, X.; Li, X.; Zhang, L.; Zhang, L.; Qiu, H.; Wang, W.; Liu, Y.; Gao, J. Preparation of Bismuth Nanoparticles in Aqueous Solution and Its Catalytic Performance for the Reduction of 4-Nitrophenol. Ind. Eng. Chem. Res. 2014, 53, 10576-10582, 10.1021/ie501142a
Cui, Z.; Zhang, Y.; Li, S.; Ge, S. Preparation and photocatalytic performance of Bi nanoparticles by microwave-assisted method using ascorbic acid as reducing agent. Catal. Commun. 2015, 72, 97-100, 10.1016/j.catcom.2015.09.024
Shahbazi, M. A.; Faghfouri, L.; Ferreira, M. P. A.; Figueiredo, P.; Maleki, H.; Sefat, F.; Hirvonen, J.; Santos, H. A. The versatile biomedical applications of bismuth-based nanoparticles and composites: therapeutic, diagnostic, biosensing, and regenerative properties. Chem. Soc. Rev. 2020, 49, 1253-1321, 10.1039/C9CS00283A
Lusic, H.; Grinsta, M. W. X-Ray-Computed Tomography Contrast Agents. Chem. Rev. 2013, 113, 1641, 10.1021/cr200358s
Brown, A. L.; Naha, P. C.; Benavides-Montes, V.; Litt, H. I.; Goforth, A. M.; Cormode, D. P. Synthesis, X-Ray Opacity, and Biological Compatibility of Ultra-High Payload Elemental Bismuth Nanoparticle X-Ray Contrast Agents. Chem. Mater. 2014, 26, 2266-2274, 10.1021/cm500077z
Wei, B.; Zhang, X.; Zhang, C.; Jiang, Y.; Fu, Y. Y.; Yu, C.; Sun, S. K.; Yan, X. P. Facile Synthesis of Uniform-Sized Bismuth Nanoparticles for CT Visualization of Gastrointestinal Tract in Vivo. ACS Appl. Mater. Interfaces 2016, 8, 12720-12726, 10.1021/acsami.6b03640
Chakravarty, S.; Unold, J.; Shuboni-mulligan, D. D.; Blanco-fernandez, B.; Shapiro, E. M. Surface Engineering of Bismuth Nanocrystals to Counter Dissolution. Nanoscale 2016, 8, 13217-13222, 10.1039/C6NR02171A
Swy, E. R.; Schwartz-Duval, A. S.; Shuboni, D. D.; Latourette, M. T.; Mallet, C. L.; Parys, M.; Cormode, D. P.; Shapiro, E. M. Dual-Modality, Fluorescent, PLGA Encapsulated Bismuth Nanoparticles for Molecular and Cellular Fluorescence Imaging and Computed Tomography. Nanoscale 2014, 6, 13104-13112, 10.1039/C4NR01405G
Li, Z.; Liu, J.; Hu, Y.; Li, Z.; Fan, X.; Sun, Y.; Besenbacher, F.; Chen, C.; Yu, M. Biocompatible PEGylated Bismuth Nanocrystals: " All-in-One " Theranostic Agent with Triple-Modal Imaging and Efficient in Vivo Photothermal Ablation of Tumors. Biomaterials 2017, 141, 284-295, 10.1016/j.biomaterials.2017.06.033
Yu, X.; Li, A.; Zhao, C.; Yang, K.; Chen, X.; Li, W. Ultrasmall Semimetal Nanoparticles of Bismuth for Dual-Modal Computed Tomography/Photoacoustic Imaging and Synergistic Thermoradiotherapy. ACS Nano 2017, 11, 3990-4001, 10.1021/acsnano.7b00476
Hossain, M.; Su, M. Nanoparticle Location and Material Dependent Dose Enhancement in X-Ray Radiation Therapy. J. Phys. Chem. C. Nanomater. Interfaces 2012, 116, 23047-23052, 10.1021/jp306543q
Hossain, M.; Luo, Y.; Sun, Z.; Wang, C.; Zhang, M.; Fu, H.; Qiao, Y.; Su, M. X-Ray Enabled Detection and Eradication of Circulating Tumor Cells with Nanoparticles. Biosens. Bioelectron. 2012, 38, 348-354, 10.1016/j.bios.2012.06.020
Deng, J.; Xu, S.; Hu, W.; Xun, X.; Zheng, L.; Su, M. Tumor Targeted, Stealthy and Degradable Bismuth Nanoparticles for Enhanced X-Ray Radiation Therapy of Breast Cancer. Biomaterials 2018, 154, 24-33, 10.1016/j.biomaterials.2017.10.048
Jiao, L.; Li, Q.; Deng, J.; Okosi, N.; Xia, J.; Su, M. Nanocellulose Templated Growth of Ultra-Small Bismuth Nanoparticles for Enhanced Radiation Therapy. Nanoscale 2018, 10, 6751-6757, 10.1039/C7NR06462D
Yu, N.; Wang, Z.; Zhang, J.; Liu, Z.; Zhu, B.; Yu, J.; Zhu, M.; Peng, C.; Chen, Z. Thiol-Capped Bi Nanoparticles as Stable and All-in-One Type Theranostic Nanoagents for Tumor Imaging and Thermoradiotherapy. Biomaterials 2018, 161, 279-291, 10.1016/j.biomaterials.2018.01.047
Luo, Y.; Hossain, M.; Wang, C.; Qiao, Y.; An, J.; Ma, L.; Su, M. Targeted Nanoparticles for Enhanced X-Ray Radiation Killing of Multidrug-Resistant Bacteria. Nanoscale 2013, 5, 687-694, 10.1039/C2NR33154C
Lei, P.; An, R.; Zhang, P.; Yao, S.; Song, S.; Dong, L.; Xu, X.; Du, K.; Feng, J. Ultrafast Synthesis of Ultrasmall Poly (Vinylpyrrolidone)-Protected Bismuth Nanodots as a Multifunctional Theranostic Agent for In Vivo Dual-Modal CT / Photothermal-Imaging-Guided Photothermal Therapy. Adv. Funct. Mater. 2017, 27, 1702018-1702010, 10.1002/adfm.201702018
Lu, S.; Xu, D.; Liao, R.; Luo, J.; Liu, Y.; Qi, Z.; Zhang, C.; Ye, N.; Wu, B.; Xu, H. Single-Component Bismuth Nanoparticles as a Theranostic Agent for Multimodal Imaging-Guided Glioma Therapy. Comput. Struct. Biotechnol. J. 2019, 17, 619-627, 10.1016/j.csbj.2019.04.005
Gomez, C.; Hallot, G.; Pastor, A.; Laurent, S.; Brun, E.; Sicard-Roselli, C.; Port, M. Metallic Bismuth Nanoparticles: Towards a Robust, Productive and Ultrasound Assisted Synthesis from Batch to Flow-Continuous Chemistry. Ultrason. Sonochem. 2019, 56, 167-173, 10.1016/j.ultsonch.2019.04.012
Gomez, C.; Port, M.; Hallot, G. Bismuth Metallic (0) Nanoparticles, Process of Manufacturing and Uses Thereof. EP Pat., 18 305 851.0, 2018.
Gomez, C.; Hallot, G.; Port, M. Bismuth metallic nanoparticles in Grumezescu, A.M. Inorganic frameworks as smart nanomedicines. Pharmaceutical Nanotechnology Series; ed. Elsevier: 2018, 1702018 1-699.
Kundu, S.; Wang, K.; Liang, H. Size-controlled synthesis and self-assembly of silver nanoparticles within a minute using microwave irradiation. J. Phys. Chem. C 2009, 113, 134-5141, 10.1021/jp808292s
Pal, A.; Shah, S.; Devi, S. Synthesis of Au, Ag and Au-Ag alloy nanoparticles in aqueous polymer solution. Colloids Surf., A 2007, 302, 51-57, 10.1016/j.colsurfa.2007.01.054
Mallikarjuna, N. N.; Varma, R. S. Microwave-Assisted Shape-Controlled Bulk Synthesis of Noble Nanocrystals and Their Catalytic Properties. Cryst. Growth Des. 2007, 7, 686-690, 10.1021/cg060506e
Uppal, M. A.; Kafizas, A.; Ewing, M. B.; Parkin, I. P. The effect of initiation method on the size, monodispersity and shape of gold nanoparticles formed by the Turkevich method. New J. Chem. 2010, 34, 2906-2914, 10.1039/C0NJ00505C
Anastas, P. T.; Zimmerman, J. B. Peer Reviewed: Design Through the 12 Principles of Green Engineering. Sustainability requires objectives at the molecular, product, process, and system levels. Environ. Sci. Technol. 2003, 37, 94A-101A, 10.1021/es032373g
Vaccaro, L. Sustainable Flow Chemistry: Methods and Applications; ed. Wiley: 2017, 1-317, 10.1002/978352768911S
Eastman, H. E.; Jamieson, C.; Watson, A. J. B. Development of Solvent Selection Guides. Aldrichimica Acta 2015, 48, 51-55
ICH steering committee. Impurities: Guideline for Residual Solvent;.
Chen, S.; Kimura, K. Synthesis and Characterization of Carboxylate-Modified Gold Nanoparticle Powders Dispersible in Water. Langmuir 1999, 15, 1075-1082, 10.1021/la9812828
Liu, J.; Qin, G.; Raveendran, P.; Ikushima, Y. Facile "Green" Synthesis, Characterization, and Catalytic Function of β-D-Glucose-Stabilized Au Nanocrystals. Chem.-Eur. J. 2006, 12, 2131-2138, 10.1002/chem.200500925
Morgunov, I. G.; Kamzolova, S. V.; Lunina, J. N. Citric Acid Production by Yarrowia lipolytica Yeast on Different Renawable Raw Materials. Fermentation 2018, 4, 1-7, 10.3390/fermentation4020036
Kharissova, O. V.; Osorio, M.; Garza, M.; Kharisov, B. I. Study of Bismuth Nanoparticles and Nanotubes Obtained by Microwave Heating. Synth. React. Inorg. M. 2008, 38, 567-572, 10.1080/15533170802293170
Bilecka, I.; Niederberger, M. Microwave chemistry for inorganic nanomaterials synthesis. Nanoscale 2010, 2, 1358-1374, 10.1039/B9NR00377K
Zhu, Y. J.; Chen, F. Microwave-Assisted Preparation of Inorganic Nanostructures in Liquid Phase. Chem. Rev. 2014, 114, 6462-6555, 10.1021/cr400366s
Raveendran, P.; Fu, J.; Wallen, S. L. A simple and "green" method for the synthesis of Au, Ag and Au-Ag alloy nanoparticles. Green Chem. 2006, 8, 34-38, 10.1039/B512540E
Shahbazali, E.; Hessel, V.; Noël, T.; Wang, Q. Metallic Nanoparticles Made in Flow and Their Catalytic Applications in Organic Synthesis. Nanotechnol. Rev. 2014, 3, 65-86, 10.1515/ntrev-2013-0017
Tsuji, M.; Hashimoto, M.; Nishizawa, Y.; Kubokawa, M.; Tsuji, T. Microwave-Assisted Synthesis of Metallic Nanostructures in Solution. Chem. Eur. J. 2005, 11, 440-452, 10.1002/chem.200400417
Baghbanzadeh, M.; Carbone, L.; Cozzoli, P. D.; Kappe, C. O. Microwave-Assisted Synthesis of Colloidal Inorganic Nanocrystals. Angew. Chem. Int. Ed. 2011, 50, 11312-11359, 10.1002/anie.201101274
Kappe, C. O. Controlled Microwave Heating in Modern Organic Synthesis. Angew. Chem. Int. Ed. 2004, 43, 6250-6284, 10.1002/anie.200400655
Nadagouda, M. N.; Speth, T. F.; Varma, R. S. Microwave-Assisted Green Synthesis of Silver Nanostructures. Acc. Chem. Res. 2011, 44, 469-478, 10.1021/ar1001457
Seol, S. K.; Kim, D.; Jung, S.; Hwu, Y. Microwave synthesis of gold nanoparticles: Effect of applied microwave power and solution pH. Mater. Chem. Phys. 2011, 131, 331-335, 10.1016/j.matchemphys.2011.09.050
Polshettiwar, V.; Nadagouda, M. N.; Varma, R. S. Microwave-Assisted Chemistry: a Rapid and Sustainable Route to Synthesis of Organics and Nanomaterials. Aust. J. Chem. 2009, 62, 16-26, 10.1071/CH08404
Gerbec, J. A.; Magana, D.; Washington, A.; Strouse, G. F. Microwave-Enhanced Reaction Rates for Nanoparticle Synthesis. J. Am. Chem. Soc. 2005, 127, 15791-15800, 10.1021/ja052463g
Hu, B.; Wang, S. B.; Wang, K.; Zhang, M.; Yu, S. H. Microwave-Assisted Rapid Facile "Green" Synthesis of Uniform Silver Nanoparticles: Self-Assembly into Multilayered Films and Their Optical Properties. J. Phys. Chem. C 2008, 112, 11169-11174, 10.1021/jp801267j
Liu, F. K.; Ker, C. J.; Chang, Y. C.; Ko, F. H.; Chu, T. C.; Dai, B. T. Microwave Heating for the Preparation of Nanometer Gold Particles. Jpn. J. Appl. Phys. 2003, 42, 4152-4158, 10.1143/JJAP.42.4152
Wu, J.; Yang, H.; Li, H.; Lu, Z.; Yu, X.; Chen, R. Microwave synthesis of bismuth nanospheres using bismuth citrate as a precursor. J. Alloys Compd. 2010, 498, L8-L11, 10.1016/j.jallcom.2010.03.165
Estrada Flores, M.; Santiago Jacinto, P.; Reza San Germán, C. M.; Rendón Vázquez, L.; Borja Urby, R.; Cayetano Castro, N. Surfactant-Free Synthesis of Metallic Bismuth Spheres by Microwave-Assisted Solvothermal Approach as a Function of the Power Level. Front. Mater. Sci. 2016, 10, 394-404, 10.1007/s11706-016-0356-6
Safardoust-Hojaghan, H.; Salavati-Niasari, M.; Hassan Motaghedifard, M.; Mostafa Hosseinpour-Mashkani, S. Synthesis of Micro Sphere-like Bismuth Nanoparticles by Microwave Assisted Polyol Method; Designing a Novel Electrochemical Nanosensor for Ultra-Trace Measurement of Pb2+Ions. New J. Chem. 2015, 39, 4676-4684, 10.1039/C5NJ00532A
Nishioka, M.; Miyakawa, M.; Kataoka, H.; Koda, H.; Sato, K.; Suzuki, T. M. Continuous Synthesis of Monodispersed Silver Nanoparticles Using a Homogeneous Heating Microwave Reactor System. Nanoscale 2011, 3, 2621-2626, 10.1039/C1NR10199D
Horikoshi, S.; Abe, H.; Torigoe, K.; Abe, M.; Serpone, N. Access to Small Size Distributions of Nanoparticles by Microwave-Assisted Synthesis. Formation of Ag Nanoparticles in Aqueous Carboxymethylcellulose Solutions in Batch and Continuous-Flow Reactors. Nanoscale 2010, 2, 1441-1447, 10.1039/C0NR00141D
Dzido, G.; Markowski, P.; Małachowska-Jutsz, A.; Prusik, K.; Jarzȩbski, A. B. Rapid Continuous Microwave-Assisted Synthesis of Silver Nanoparticles to Achieve Very High Productivity and Full Yield: From Mechanistic Study to Optimal Fabrication Strategy. J. Nanopart. Res. 2015, 17, 27-15, 10.1007/s11051-014-2843-y
Harada, M.; Cong, C. Microwave-Assisted Polyol Synthesis of Polymer-Protected Monometallic Nanoparticles Prepared in Batch and Continuous-Flow Processing. Ind. Eng. Chem. Res. 2016, 55, 5634-5643, 10.1021/acs.iecr.6b00991
Bayazit, M. K.; Yue, J.; Cao, E.; Gavriilidis, A.; Tang, J. Controllable Synthesis of Gold Nanoparticles in Aqueous Solution by Microwave Assisted Flow Chemistry. ACS Sustainable Chem. Eng. 2016, 4, 6435-6442, 10.1021/acssuschemeng.6b01149
Estel, L.; Poux, M.; Benamara, N.; Polaert, I. Continuous flow-microwave reactor: Where are we?. Chem. Eng. Process. 2017, 113, 56-64, 10.1016/j.cep.2016.09.022
Chatel, G.; Varma, R. S. Ultrasound and microwave irradiation: contributions of alternative physicochemical activation methods to Green Chemistry. Green Chem. 2019, 21, 6043-6050, 10.1039/C9GC02534K
Vaccaro, L.; Lanari, D.; Marrocchia, A.; Strappaveccia, G. Flow approaches towards sustainability. Green Chem. 2014, 16, 3680-3704, 10.1039/C4GC00410H
Movsisyan, M.; Delbeke, E. P. I.; Berton, J. K. E. T.; Battilocchio, C.; Ley, S. V.; Stevens, C. V. Taming hazardous chemistry by continuous flow technology. Chem. Soc. Rev. 2016, 45, 4892-4928, 10.1039/C5CS00902B
Lobet, O.; Vizza, A. SiC Advanced-Flow Reactors for Highly Corrosive Media. Spec. Chem. Mag. 2016, 36, 32-35
Garagalza, O. Polymérisation Radicalaire En Continu Dans Un Systeme Millifluidique Assistée Par Micro-Ondes. Univ. PAU des Pays l'Adour 2013, 1-192
Haswell, S. J.; Watts, P. Green chemistry: synthesis in micro reactors. Green Chem. 2003, 5, 240-249, 10.1039/B210539J
Shaterabadi, Z.; Nabiyuni, G.; Soleymani, M. High impact of in situ dextran coating on biocompatibility, stability and magnetic properties of iron oxide nanoparticles. Mater. Sci. Eng. C 2017, 75, 947-956, 10.1016/j.msec.2017.02.143
Bhattacharjee, S. DLS and zeta potential-What they are and what they are not ?. J. Controlled Release 2016, 235, 337-351, 10.1016/j.jconrel.2016.06.017
Holder, C. F.; Schaak, R. E. Tutorial on Powder X-ray Diffraction for Characterizing Nanoscale Materials. ACS Nano 2019, 13, 7359-7365, 10.1021/acsnano.9b05157
Fang, J.; Stokes, K. L.; Wiemann, J. A.; Zhou, W. L.; Dai, J.; Chen, F.; O'Connor, C. J. Microemulsion-Processed Bismuth Nanoparticles. Mater. Sci. Eng., B 2001, 83, 254-257, 10.1016/S0921-5107(01)00528-1
Bajaj, M.; Wangoo, N.; Jain, D. V. S.; Sharma, R. K. Quantification of adsorbed and dangling citrate ions on gold nanoparticle surface using thermogravimetric analysis. Sci. Rep. 2020, 8213-8220, 10.1038/s41598-020-65013-0