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Keywords = microbubbles/nanobubbles

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23 pages, 7893 KB  
Article
Derivative Texture Analysis of Tumor Histology for Evaluating Ultrasound Nanobubble-Driven Radiation Enhancement
by Yingqi Zhang, Lakshmanan Sannachi, Kai Xuan Leong, Wenyi Yang, Deepa Sharma, Ryan Yang and Gregory J. Czarnota
Cells 2026, 15(16), 1491; https://doi.org/10.3390/cells15161491 - 19 Aug 2026
Viewed by 265
Abstract
Microbubbles (MBs) have been used as a radiosensitizer, and their combination with ultrasound (US) has emerged as a promising strategy to improve radiotherapy outcomes in tumor treatment. Nanobubbles (NBs), which are about 1000 times smaller than MB and have enhanced stability, have been [...] Read more.
Microbubbles (MBs) have been used as a radiosensitizer, and their combination with ultrasound (US) has emerged as a promising strategy to improve radiotherapy outcomes in tumor treatment. Nanobubbles (NBs), which are about 1000 times smaller than MB and have enhanced stability, have been considered to have the potential for further radiosensitization enhancement. In this study, tumor-bearing models were treated with and without nanobubble–ultrasound (NBUS) treatment before radiotherapy (XRT) to evaluate the radiosensitization. The time intervals between the NB injection and US exposure, and between US and XRT, were optimized to maximize the therapeutic efficacy. A derivative texture analysis was applied to extract microstructural features from haematoxylin and eosin (H&E)-stained images. A one-way ANOVA test combined with a k-NN classifier and Tukey’s Honestly Significant Difference (HSD) test was used to identify the best features for assessing treatment outcomes. These were applied to H&E-stained tumor sections for evaluating microstructural alterations associated with NB-driven radiosensitization. The results indicated that both the 2 Gy and 8 Gy radiation groups showed enhanced treatment outcomes when NBUS therapy was administered before radiotherapy. Notably, NBUS + 2 Gy could achieve outcomes comparable to 8 Gy only. Additionally, a derivative texture analysis was demonstrated to be a promising and powerful technique for analyzing H&E images. This study provides a quantitative framework for assessing nanobubble-enhanced radiotherapy. Full article
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28 pages, 1008 KB  
Review
Xenon Encapsulation in Liposomes, Nanobubbles, and Microbubbles: Delivery Strategies, Preclinical Evidence, and Translational Barriers
by Rostislav A. Cherpakov, Vera S. Shashkovskaya, Oleg A. Grebenchikov and Viktoria Sergunova
Pharmaceutics 2026, 18(7), 855; https://doi.org/10.3390/pharmaceutics18070855 - 14 Jul 2026
Viewed by 585
Abstract
Xenon is an active noble gas with anesthetic, neuroprotective and organ-protective properties, but its therapeutic application remains limited by high cost, the need for specialized delivery systems, and the inefficiency of conventional inhalation administration. In this context, Xenon encapsulation into lipid-based nanocarriers, including [...] Read more.
Xenon is an active noble gas with anesthetic, neuroprotective and organ-protective properties, but its therapeutic application remains limited by high cost, the need for specialized delivery systems, and the inefficiency of conventional inhalation administration. In this context, Xenon encapsulation into lipid-based nanocarriers, including liposomes and microbubbles, has emerged as a promising strategy to improve targeted delivery, reduce overall Xenon consumption, and enable stimulus-responsive release. This review summarizes current approaches to Xenon loading into liposomes and microbubbles, with emphasis on formulation principles, physicochemical characteristics, stability, acoustic behavior, and ultrasound-triggered release. We further analyze available evidence from preclinical animal models, particularly ischemic stroke, traumatic brain injury, and subarachnoid hemorrhage, where Xenon-loaded carriers have demonstrated the potential to reduce tissue injury and improve functional outcomes. Particular attention is given to the comparative advantages and limitations of liposomal and microbubble-based platforms, including the loading efficiency, circulation behavior, and translational feasibility. Overall, Xenon encapsulation technologies represent a promising direction for the development of localized and potentially more economical Xenon-based therapy. However, further standardization of carrier characterization, dosing strategies, and preclinical protocols is required before these systems can be reliably advanced toward clinical translation. Full article
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23 pages, 3213 KB  
Review
CO2 Nanobubbles as an Emerging EOR–CCUS Technology: Comparative Review of Laboratory Studies, Underlying Mechanisms, and Preliminary Assessment of CO2 Storage Potential
by Abdulrahman Shahin, Elvin Hajiyev, Hossameldeen Elnaggar, Bassel Eissa, Mahmoud Abdellatif, Abdul Rehman Baig and Marshall Watson
Energies 2026, 19(10), 2323; https://doi.org/10.3390/en19102323 - 12 May 2026
Viewed by 1127
Abstract
Nanobubbles (NBs) are emerging as a promising area of research across multiple scientific and industrial domains due to their unique physicochemical characteristics. NBs exhibit distinctive properties compared to normal bubbles, including high internal pressure, a large specific surface area, high interfacial activity, and [...] Read more.
Nanobubbles (NBs) are emerging as a promising area of research across multiple scientific and industrial domains due to their unique physicochemical characteristics. NBs exhibit distinctive properties compared to normal bubbles, including high internal pressure, a large specific surface area, high interfacial activity, and long-term stability in liquids. Therefore, NBs have gained increasing attention as a novel enhanced oil recovery (EOR) technique, offering potential advantages over traditional gas flooding and chemical flooding. CO2-NB specifically represents a particularly promising approach as an intersection of EOR and carbon capture, utilization, and storage (CCUS), as CO2-NB enables hydrocarbon recovery and in situ CO2 utilization and storage at reservoir conditions. This paper presents a structured comparative discussion of currently identified experimental EOR studies that employ CO2-NBs. Based on the observations of these experiments, this paper discusses the proposed mechanisms in those experiments or other studies that could scientifically play a role in achieving incremental recovery. The main mechanisms discussed include interfacial tension reduction, wettability alteration, CO2 transfer from NBs into the oil liquid phase, and suppression of gravity segregation. Other possible contributors discussed in the literature include buoyancy-assisted mobilization, induced shock waves, and drag force reduction. These mechanisms are examined in relation to the distinctive properties of CO2-NBs, showing how these properties contribute to the occurrence of the proposed mechanisms, showcasing the potential of CO2-NBs as an emergent EOR–CCUS technology. A preliminary probabilistic assessment was performed to estimate CO2 storage potential during CO2-NBs EOR injection. The results suggest that the majority of the injected CO2 is dissolved in the saturated liquid phase, while the amount of free NBs is negligible, indicating that CO2-NB injection may provide secure storage through solubility trapping, but with lower storage capacity compared to conventional geological sequestration in saline aquifers. Full article
(This article belongs to the Special Issue New Advances in Carbon Capture and Clean Energy Technologies)
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13 pages, 3602 KB  
Article
Operation Frequency of an Exploding Gas Microactuator
by Pavel S. Shlepakov, Ilia V. Uvarov and Vitaly B. Svetovoy
Actuators 2026, 15(5), 241; https://doi.org/10.3390/act15050241 - 29 Apr 2026
Viewed by 345
Abstract
An exploding gas actuator uses H2 and O2 nanobubbles produced electrochemically. At some conditions, these nanobubbles merge and explode synchronously due to a combustion reaction. This actuator, with a volume of less than 10 nL, demonstrated excellent properties, but the actuation [...] Read more.
An exploding gas actuator uses H2 and O2 nanobubbles produced electrochemically. At some conditions, these nanobubbles merge and explode synchronously due to a combustion reaction. This actuator, with a volume of less than 10 nL, demonstrated excellent properties, but the actuation frequency was restricted to 1 Hz. In this paper, it is shown that the natural actuation frequency has to be as high as 100 Hz, and the reasons for the restricted frequency are analysed. It is found that there exists a threshold frequency, which increases with the chamber size. It reaches a value of 40 Hz for a chamber with a diameter of 1 mm. Above the threshold frequency, a residual gas is collected in the chamber. This gas is identified as air dissolved in the electrolyte. Explosions in the chamber provide conditions for the residual gas to form microbubbles, which are dissolved at a low operation frequency but collected above the threshold value. This study opens up opportunities to increase the actuation frequency of the exploding gas actuator. Full article
(This article belongs to the Section Miniaturized and Micro Actuators)
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17 pages, 836 KB  
Article
Nanobubble- and Microbubble Aeration Affect Leaf Quality Without Changing Yield of Lettuce Grown in Floating Systems
by Leonardo Fiore, Mariateresa Cardarelli, José Carlos Laban Lliuya, Paolo Bonini, Piero Santelli and Giuseppe Colla
Horticulturae 2025, 11(9), 1141; https://doi.org/10.3390/horticulturae11091141 - 19 Sep 2025
Cited by 5 | Viewed by 2614
Abstract
Dissolved oxygen (DO) concentration in nutrient solution is critical for maximizing yield and optimizing quality traits of lettuce plants grown in floating systems. This study evaluated the effects of two aeration systems—a Venturi system (V) and a Venturi system combined with a nanobubble [...] Read more.
Dissolved oxygen (DO) concentration in nutrient solution is critical for maximizing yield and optimizing quality traits of lettuce plants grown in floating systems. This study evaluated the effects of two aeration systems—a Venturi system (V) and a Venturi system combined with a nanobubble generator using electromagnetic waves (VN)—compared with a non-aerated control (C), on quali-quantitative traits of lettuce plants grown in a floating system over two consecutive harvests. Both aeration treatments significantly increased DO levels in the nutrient solution compared to C, with the VN treatment maintaining the highest value throughout the crop cycle. Although no significant differences in lettuce yield were observed, both aeration treatments enhanced the leaf concentration of P, Mn, Zn, and Cu in the second harvest, and Mg in both harvests. Moreover, the VN treatment lowered leaf nitrate concentration in both harvests compared to the other treatments. The increase in DO in the nutrient solution delayed leaf senescence, as evidenced by higher chlorophyll index and lower anthocyanin levels in the lettuce leaves harvested at the end of the trial for both aeration systems. These results suggest that aeration, particularly with nanobubbles, can be an effective and sustainable strategy to enhance the quality traits of lettuce grown in a floating system. Full article
(This article belongs to the Special Issue Productivity and Quality of Vegetable Crops under Climate Change)
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29 pages, 466 KB  
Review
Emerging and Innovative Technologies for the Sanitization of Fresh Produce: Advances, Mechanisms, and Applications for Enhancing Food Safety and Quality
by Yuqiao Jin and Achyut Adhikari
Foods 2025, 14(11), 1924; https://doi.org/10.3390/foods14111924 - 28 May 2025
Cited by 22 | Viewed by 8627
Abstract
The consumption of fresh produce has significantly increased in recent years, contributing to improved diets through the provision of essential nutrients, vitamins, and fiber. However, there has been a rise in foodborne illness outbreaks linked to fruits and vegetables, often caused by pathogens [...] Read more.
The consumption of fresh produce has significantly increased in recent years, contributing to improved diets through the provision of essential nutrients, vitamins, and fiber. However, there has been a rise in foodborne illness outbreaks linked to fruits and vegetables, often caused by pathogens such as Escherichia coli O157:H7, Salmonella spp., and Listeria monocytogenes. These outbreaks have led to severe health consequences, including illnesses, hospitalizations, and even deaths. Once produce is contaminated by foodborne pathogens, these pathogens are difficult to eliminate. Traditional decontamination methods, such as water washes and chlorine-based sanitizers, have been widely used to address these microbial concerns. However, these methods may not be effective against pathogens in crevices or biofilms on the surface of produce, and their effectiveness varies depending on the type of produce and pathogens. Moreover, the chemicals used may raise health and environmental concerns. As a result, novel technologies for pathogen inactivation are gaining attention. These include ozone, ultraviolet light, cold plasma, pulsed light, ultrasound, microbubbles, nanobubbles, electrolyzed water, high-pressure processing, chlorine dioxide gas, and among others. This paper reviews a range of emerging and innovative technologies for the sanitization of fresh produce. The mechanisms, advancements, and practical applications of these technologies are examined with a focus on enhancing food safety and preserving produce quality. These innovative methods provide new opportunities for both research and industry to develop practical, affordable, and safe solutions for maintaining produce safety and quality. Recent studies highlight the effectiveness of combining methods, showing that using multiple sanitization techniques can significantly improve pathogen inactivation on fresh produce. For example, more than 5 log reductions of Listeria innocua and E. coli on avocado, watermelon, and mushroom can be achieved with the combined application of pulsed light and malic acid in previous research. In this review, we recommend the application of combined sanitization methods, emphasizing that integrating multiple techniques can provide a more effective and comprehensive approach to pathogen inactivation. This combined-method strategy has become a promising and innovative trend in the ongoing efforts to improve produce safety and quality. Full article
18 pages, 4058 KB  
Article
Evaluating Immune Activation Feasibility in Pancreatic Ductal Adenocarcinoma via Oxygen Bubble-Induced Anti-Vascular Therapy
by Tzu-Yun Chiu, Yi-Jia Zho and Yi-Ju Ho
Pharmaceutics 2025, 17(5), 645; https://doi.org/10.3390/pharmaceutics17050645 - 13 May 2025
Cited by 1 | Viewed by 1143
Abstract
Background/Objectives: Anti-vascular therapy presents a potential strategy for activating anti-tumor immunity. Disrupted vascular debris provides effective antigens that activate dendritic cells, leading to subsequent immune responses. However, the resulting tumor hypoxia following vascular disruption may contribute to immune suppression, thereby hindering effective immune [...] Read more.
Background/Objectives: Anti-vascular therapy presents a potential strategy for activating anti-tumor immunity. Disrupted vascular debris provides effective antigens that activate dendritic cells, leading to subsequent immune responses. However, the resulting tumor hypoxia following vascular disruption may contribute to immune suppression, thereby hindering effective immune activation. Ultrasound-stimulated microbubble cavitation can locally disrupt tumor vessels through mechanical effects to achieve physical anti-vascular therapy. Therefore, this study designed oxygen-loaded nanobubbles (ONBs) to combine anti-vascular effects with local oxygen release under ultrasound stimulation. The feasibility of enhancing anti-tumor immune activation by alleviating tumor hypoxia was evaluated. Methods: A murine pancreatic subcutaneous solid tumor model was used to evaluate the efficacy of anti-vascular therapy-associated immunotherapy. Results: After ONB treatment, tumor perfusion was reduced to 52 ± 5%, which resulted in a subsequent 57 ± 11% necrosis and a 29 ± 4% reduction in hypoxia, demonstrating the anti-vascular effect and reoxygenation, respectively. However, subsequent immune responses exhibited no significant activation in intratumoral cytokine expression or splenic immune cell composition. Primary tumors exhibited a 15.7 ± 5.0% increase in necrosis following ONB treatment, but distant tumor growth was not significantly inhibited. Conclusions: These results highlighted a crucial issue regarding the complex correlations between vessel disruption, antigen production, oxygen delivery, hypoxia, and immunity when combining anti-vascular therapy with immunotherapy. Full article
(This article belongs to the Section Drug Targeting and Design)
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41 pages, 7728 KB  
Review
Micro-Nanobubble Technology in Surface Cleaning and Defouling
by Baljinder Singh, Gunwoo Park, Ja-Hyoung Ryu and Myoung-Hwan Park
Appl. Sci. 2025, 15(3), 1197; https://doi.org/10.3390/app15031197 - 24 Jan 2025
Cited by 13 | Viewed by 13100
Abstract
The physicochemical characteristics of micro- and nanobubbles (MNBs) have attracted considerable interest owing to their potential use in various industries, such as water treatment, agriculture, healthcare, and environmental remediation. This review focuses on the functions of MBs and, mainly, NBs in cleaning and [...] Read more.
The physicochemical characteristics of micro- and nanobubbles (MNBs) have attracted considerable interest owing to their potential use in various industries, such as water treatment, agriculture, healthcare, and environmental remediation. This review focuses on the functions of MBs and, mainly, NBs in cleaning and defouling applications by thoroughly examining the mechanics of their stability, generation, and interaction with surfaces. Wastewater treatment, biofilm removal, and membrane fouling avoidance are cutting-edge techniques that use MNBs to improve cleaning effectiveness. Notably, this review highlights that microbubbles and nanobubbles can be used together synergistically or applied separately based on specific application needs. This review emphasizes how MNB technology can be integrated with other systems, such as bioremediation and sophisticated oxidation processes, to address challenging cleaning issues. The capacity of MNBs to lower operating costs; their impact on the environment; and their synergistic effects with chemical, biological, and physical agents are highlighted. To maximize the use of MNBs in environmentally friendly cleaning technologies, this review offers insights into the new horizons of MB and NB applications by synthesizing recent discoveries and suggesting directions for further studies and industrial-scale deployment. Full article
(This article belongs to the Special Issue Pollution Control Chemistry II)
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16 pages, 2580 KB  
Article
Impact of Water Purity and Oxygen Content in Gas Phase on Effectiveness of Surface Cleaning with Microbubbles
by Karol Ulatowski, Patryk Szczygielski and Paweł Sobieszuk
Materials 2024, 17(24), 6046; https://doi.org/10.3390/ma17246046 - 10 Dec 2024
Cited by 3 | Viewed by 2281
Abstract
Cleaning of surfaces without complex cleaning agents is an important subject, especially in food, pharmaceutical, and biomedical applications. The subject of microbubble and nanobubble cleaning is considered one of the most promising ways to intensify this process. In this work, we check whether [...] Read more.
Cleaning of surfaces without complex cleaning agents is an important subject, especially in food, pharmaceutical, and biomedical applications. The subject of microbubble and nanobubble cleaning is considered one of the most promising ways to intensify this process. In this work, we check whether and how the purity of water used for microbubble generation, as well as the gas used, affects the effectiveness of cleaning stainless-steel surfaces. Surfaces contaminated with Pluronic L-121 solution were cleaned by water of three purities: ultrapure water (<0.05 μS/cm), water after reversed osmosis (~6.0 μS/cm), and tap water (~0.8 mS/cm). Similarly, three different gases were supplied to the generation setup for microbubble generation: air, oxygen, and nitrogen. Stainless steel plates were immersed in water during microbubble generation and cleaned for a given time. FTIR (Fourier Transform Infrared Spectroscopy) and contact angle analysis were employed for the analysis of surfaces. The results of cleaning were repeatable between plates and showed different cleaning effects depending on both the purity of water (concentration of ions) and gas composition. We have proposed different mechanisms that are dominant with respect to specific combinations of ion concentration and oxygen content in gas, which are directly connected to the microbubble stability and reactivity of gas. Full article
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13 pages, 1989 KB  
Review
A Promising Therapeutic Strategy of Combining Acoustically Stimulated Nanobubbles and Existing Cancer Treatments
by Deepa Sharma, Tera N. Petchiny and Gregory J. Czarnota
Cancers 2024, 16(18), 3181; https://doi.org/10.3390/cancers16183181 - 17 Sep 2024
Cited by 5 | Viewed by 3892
Abstract
In recent years, ultrasound-stimulated microbubbles (USMBs) have gained great attention because of their wide theranostic applications. However, due to their micro-size, reaching the targeted site remains a challenge. At present, ultrasound-stimulated nanobubbles (USNBs) have attracted particular interest, and their small size allows them [...] Read more.
In recent years, ultrasound-stimulated microbubbles (USMBs) have gained great attention because of their wide theranostic applications. However, due to their micro-size, reaching the targeted site remains a challenge. At present, ultrasound-stimulated nanobubbles (USNBs) have attracted particular interest, and their small size allows them to extravasate easily in the blood vessels penetrating deeper into the tumor vasculature. Incorporating USNBs with existing cancer therapies such as chemotherapy, immunotherapy, and/or radiation therapy in several preclinical models has been demonstrated to have a profound effect on solid tumors. In this review, we provide an understanding of the composition and formation of nanobubbles (NBs), followed by the recent progress of the therapeutic combinatory effect of USNBs and other cancer therapies in cancer treatment. Full article
(This article belongs to the Special Issue Advances in Oncological Imaging)
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18 pages, 2147 KB  
Article
Synergistic Effect of Plasma-Activated Water with Micro/Nanobubbles, Ultraviolet Photolysis, and Ultrasonication on Enhanced Escherichia coli Inactivation in Chicken Meat
by Kochakon Moonsub, Phisit Seesuriyachan, Dheerawan Boonyawan and Wassanai Wattanutchariya
Processes 2024, 12(3), 567; https://doi.org/10.3390/pr12030567 - 13 Mar 2024
Cited by 19 | Viewed by 5499
Abstract
The use of integrated plasma-activated water (PAW) with micro/nanobubbles (MNBs), ultraviolet (UV) photolysis, and ultrasonication (US) for the synergistic efficiency of Escherichia coli inactivation in chicken meat was investigated. A 2k factorial design was employed to optimize the combined treatment parameters for [...] Read more.
The use of integrated plasma-activated water (PAW) with micro/nanobubbles (MNBs), ultraviolet (UV) photolysis, and ultrasonication (US) for the synergistic efficiency of Escherichia coli inactivation in chicken meat was investigated. A 2k factorial design was employed to optimize the combined treatment parameters for pathogen disinfection in Design of Experiments (DOE) techniques. Its effectiveness was evaluated based on electrical conductivity (EC), oxidation–reduction potential (ORP), hydrogen peroxide (H2O2) concentration, and E. coli inactivation. The most significant impact on E. coli reduction was observed for MNBs, UV treatment time, and their interaction (MNBs and UV). Optimal E. coli inactivation (6 log10 CFU/mL reduction) was achieved by combining PAW with MNB and UV for 10 and 20 min, respectively. Integrating PAW with appropriate supplementary technologies enhanced E. coli inactivation by 97% compared to PAW alone. This novel approach provides a promising alternative for pathogen control in chicken meat, potentially improving food safety and shelf life in the poultry industry. Full article
(This article belongs to the Special Issue Atmospheric Pressure Plasma Technologies and Applications)
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19 pages, 2862 KB  
Review
Review of Micro- and Nanobubble Technologies: Advancements in Theory and Applications and Perspectives on Adsorption Cooling and Desalination Systems
by Lukasz Lasek, Jaroslaw Krzywanski, Dorian Skrobek, Anna Zylka and Wojciech Nowak
Energies 2023, 16(24), 8078; https://doi.org/10.3390/en16248078 - 15 Dec 2023
Cited by 22 | Viewed by 5609
Abstract
Adsorption refrigerators are a compelling ecological alternative to compressor refrigerators; global warming forces us to constantly look for alternative sources of energy and cold. Cold production in adsorption chillers is based on the use of heat generated by other processes running in the [...] Read more.
Adsorption refrigerators are a compelling ecological alternative to compressor refrigerators; global warming forces us to constantly look for alternative sources of energy and cold. Cold production in adsorption chillers is based on the use of heat generated by other processes running in the company. Waste heat from production processes, which has, until now, been irretrievably lost, is a potential source of energy for generating cold via an adsorption unit producing chilled water. Cooling optimizes the use of the heating network in summer and can lead to increased electricity production while reducing heat supply losses. Thus far, attempts to implement adsorption refrigerators for widespread use have not been successful as a result of the low efficiency of these devices; this is directly related to the poor heat and mass transfer conditions in the beds and heat exchangers of adsorption refrigerators. The solutions used so far, such as new working pairs, glued beds or modifications to the structure or cycle length, are still not strong enough for these devices. Therefore, it is necessary to look for new solutions. Using micro- and nanobubbles as media to increase mass and heat transfer in refrigerators is an innovative and pioneering solution. Thus, this document describes the most important features of micro- and nanobubble technology applications in adsorption refrigerators. This article is an introduction and a basis for the implementation of further research, consolidating the existing literature as a review. Full article
(This article belongs to the Special Issue Solar-Powered Desalination and Adsorption Cooling Systems)
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29 pages, 2942 KB  
Review
Bubble-Based Drug Delivery Systems: Next-Generation Diagnosis to Therapy
by Mihaela Kancheva, Lauren Aronson, Tara Pattilachan, Francesco Sautto, Benjamin Daines, Donald Thommes, Angela Shar and Mehdi Razavi
J. Funct. Biomater. 2023, 14(7), 373; https://doi.org/10.3390/jfb14070373 - 17 Jul 2023
Cited by 34 | Viewed by 6843
Abstract
Current radiologic and medication administration is systematic and has widespread side effects; however, the administration of microbubbles and nanobubbles (MNBs) has the possibility to provide therapeutic and diagnostic information without the same ramifications. Microbubbles (MBs), for instance, have been used for ultrasound (US) [...] Read more.
Current radiologic and medication administration is systematic and has widespread side effects; however, the administration of microbubbles and nanobubbles (MNBs) has the possibility to provide therapeutic and diagnostic information without the same ramifications. Microbubbles (MBs), for instance, have been used for ultrasound (US) imaging due to their ability to remain in vessels when exposed to ultrasonic waves. On the other hand, nanobubbles (NBs) can be used for further therapeutic benefits, including chronic treatments for osteoporosis and cancer, gene delivery, and treatment for acute conditions, such as brain infections and urinary tract infections (UTIs). Clinical trials are also being conducted for different administrations and utilizations of MNBs. Overall, there are large horizons for the benefits of MNBs in radiology, general medicine, surgery, and many more medical applications. As such, this review aims to evaluate the most recent publications from 2016 to 2022 to report the current uses and innovations for MNBs. Full article
(This article belongs to the Special Issue Nanoparticles and Hydrogel for Drug Delivery: Design and Synthesis)
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17 pages, 11589 KB  
Article
Effects of Gas Type, Oil, Salts and Detergent on Formation and Stability of Air and Carbon Dioxide Bubbles Produced by Using a Nanobubble Generator
by Kaiyu Zhou, Vincent Maugard, Wenming Zhang, Joe Zhou and Xuehua Zhang
Nanomaterials 2023, 13(9), 1496; https://doi.org/10.3390/nano13091496 - 27 Apr 2023
Cited by 12 | Viewed by 6218
Abstract
Recent developments in ultrafine bubble generation have opened up new possibilities for applications in various fields. Herein, we investigated how substances in water affect the size distribution and stability of microbubbles generated by a common nanobubble generator. By combining light scattering techniques with [...] Read more.
Recent developments in ultrafine bubble generation have opened up new possibilities for applications in various fields. Herein, we investigated how substances in water affect the size distribution and stability of microbubbles generated by a common nanobubble generator. By combining light scattering techniques with optical microscopy and high-speed imaging, we were able to track the evolution of microbubbles over time during and after bubble generation. Our results showed that air injection generated a higher number of microbubbles (<10 μm) than CO2 injection. Increasing detergent concentration led to a rapid increase in the number of microbubbles generated by both air and CO2 injection and the intensity signal detected by dynamic light scattering (DLS) slightly increased. This suggested that surface-active molecules may inhibit the growth and coalescence of bubbles. In contrast, we found that salts (NaCl and Na2CO3) in water did not significantly affect the number or size distribution of bubbles. Interestingly, the presence of oil in water increased the intensity signal and we observed that the bubbles were coated with an oil layer. This may contribute to the stability of bubbles. Overall, our study sheds light on the effects of common impurities on bubble generation and provides insights for analyzing dispersed bubbles in bulk. Full article
(This article belongs to the Special Issue Nanobubbles and Their Applications)
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11 pages, 21246 KB  
Article
Nanobubble Enhances Rutile Flotation Separation in Styrene Phosphoric Acid System
by Yonghai Wang, Wei Xiao and Wenqing Qin
Separations 2023, 10(4), 243; https://doi.org/10.3390/separations10040243 - 5 Apr 2023
Cited by 9 | Viewed by 2437
Abstract
Due to the weak hydrophobicity of styrene phosphoric acid (SPA), the amount used as a collector for rutile flotation is too large, resulting in high beneficiation costs. In this study, SPA was modified by nanobubbles to enhance its hydrophobicity. In this paper, the [...] Read more.
Due to the weak hydrophobicity of styrene phosphoric acid (SPA), the amount used as a collector for rutile flotation is too large, resulting in high beneficiation costs. In this study, SPA was modified by nanobubbles to enhance its hydrophobicity. In this paper, the modification of SPA by nanobubbles and the adsorption mechanism of SPA on rutile surface before and after modification were studied by means of nanoparticle tracking analysis, micro-bubble flotation test, contact angle test, zeta potential test, etc. The results show that SPA can significantly increase the concentration of bulk nanobubbles, increase the flotation recovery of rutile from 55% to 69%, and reduce the dosage of SPA from 101 mg/L to 70 mg/L. Nanobubbles interact with SPA in the form of water drainage, significantly reducing the zeta potential of the rutile surface and increasing the solid–liquid interface contact angle of rutile surface. A model of the interaction between nanobubbles, SPA, and rutile surface is established, which is helpful to understand the process mechanism of nanobubble flotation. Full article
(This article belongs to the Section Purification Technology)
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