Optimization of ultrasound heating with Pickering droplets using core–shell scattering theory

IF 8.7 1区 化学 Q1 ACOUSTICS Ultrasonics Sonochemistry Pub Date : 2024-07-02 DOI:10.1016/j.ultsonch.2024.106965
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Abstract

Nanoparticles find widespread application in various medical contexts, including targeted nanomedicine and enhancing therapeutic efficacy. Moreover, they are employed to stabilize emulsions, giving rise to stabilized droplets known as Pickering droplets. Among the various methods to improve anti-cancer treatment, ultrasound hyperthermia stands out as an efficient approach. This research proposes Pickering droplets as promising sonosensitizer candidates, to enhance the attenuation of ultrasound with simultaneous potential to act as drug carriers. The enhanced ultrasound energy dissipation could be, therefore, optimized by changing the parameters of Pickering droplets.

The ultrasound scattering theory, based on the core–shell model, was employed to calculate theoretical ultrasound properties such as attenuation and velocity. Additionally, computer simulations, based on a bioheat transfer model, were utilized to compute heat generation in agar-based phantoms of tissues under different ultrasound wave frequencies. Two types of phantoms were simulated: a pure agar phantom and an agar phantom incorporating spherical inclusions. The spherical inclusions, with a diameter of 10 mm, were doped with various sizes of Pickering droplets, considering their core radius and shell thickness.

Computer simulation of these spherical inclusions incorporated within agar phantom resulted in different enhancement of achieved temperature elevation, which depending on the core radius, shell thickness, and the material properties of the system. Notably, spherical inclusions doped with Pickering droplets stabilized by magnetite nanoparticles exhibited a higher temperature rise compared to droplets stabilized by silica nanoparticles. Moreover, nanodroplets with a core radius below 400 nm demonstrated better heating performance compared to microdroplets. Furthermore, Pickering droplets incorporated into agar phantom could allow obtaining a similar effect of local heating as sophisticated focused ultrasound devices.

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利用核壳散射理论优化皮克林液滴的超声波加热
纳米粒子广泛应用于各种医疗领域,包括靶向纳米医学和提高疗效。此外,纳米粒子还可用于稳定乳液,产生被称为皮克林液滴的稳定液滴。在各种改善抗癌治疗的方法中,超声热疗是一种有效的方法。本研究建议将皮克林液滴作为有前途的声敏剂候选物,以增强超声衰减,同时具有作为药物载体的潜力。因此,可以通过改变皮克林液滴的参数来优化增强的超声能量耗散。基于核壳模型的超声散射理论被用来计算衰减和速度等理论超声特性。此外,还利用基于生物传热模型的计算机模拟计算了不同超声波频率下琼脂基组织模型的发热量。模拟了两种模型:纯琼脂模型和含有球形夹杂物的琼脂模型。这些球形包裹体直径为 10 毫米,根据其核心半径和外壳厚度掺入了不同大小的 Pickering 液滴。值得注意的是,与由二氧化硅纳米粒子稳定的液滴相比,掺入了由磁铁矿纳米粒子稳定的皮克林液滴的球形内含物表现出更高的温升。此外,与微液滴相比,核心半径低于 400 纳米的纳米液滴具有更好的加热性能。此外,在琼脂模型中加入皮克林液滴可以获得与先进的聚焦超声设备类似的局部加热效果。
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来源期刊
Ultrasonics Sonochemistry
Ultrasonics Sonochemistry 化学-化学综合
CiteScore
15.80
自引率
11.90%
发文量
361
审稿时长
59 days
期刊介绍: Ultrasonics Sonochemistry stands as a premier international journal dedicated to the publication of high-quality research articles primarily focusing on chemical reactions and reactors induced by ultrasonic waves, known as sonochemistry. Beyond chemical reactions, the journal also welcomes contributions related to cavitation-induced events and processing, including sonoluminescence, and the transformation of materials on chemical, physical, and biological levels. Since its inception in 1994, Ultrasonics Sonochemistry has consistently maintained a top ranking in the "Acoustics" category, reflecting its esteemed reputation in the field. The journal publishes exceptional papers covering various areas of ultrasonics and sonochemistry. Its contributions are highly regarded by both academia and industry stakeholders, demonstrating its relevance and impact in advancing research and innovation.
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