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由明胶和蜂蜡组装的热降解水扩散屏障用于可食用电子器件。

Thermally Degradable Water Diffusion Barrier Assembled by Gelatin and Beeswax toward Edible Electronics.

机构信息

NTT Device Technology Laboratories, NTT Corporation, 3-1 Morinosato, Wakamiya, Atsugi, Kanagawa 243-0198, Japan.

出版信息

ACS Appl Mater Interfaces. 2024 Aug 7;16(31):41223-41229. doi: 10.1021/acsami.4c08493. Epub 2024 Jul 30.

Abstract

Making ingestible devices edible facilitates diagnosis and therapy inside the body without the risk of retention; however, food materials are generally soft, absorb water molecules, and are not suitable for electronic devices. Here, we fabricated an edible water diffusion barrier film made by gelatin-beeswax composites for the encapsulation of transient electronics. Hydrophobic beeswax and hydrophilic gelatin are inherently difficult to mix; therefore, we created an emulsion simply by raising the temperature high enough to melt the materials and vigorous stirring them. As they cool, the beeswax with a relatively high solidification temperature aggregates and forms microspheres, which increases the gelatin gel's viscoelasticity and immobilizes the emulsion structure in the film. The thermoresponsive gelatin imparts degradability to the barrier and its stickiness also enables transfer of metal patterned electronics. Furthermore, we designed an edible resonator on the film and demonstrated its operation in an abdominal phantom environment; the resonator was made to be degradable in a warm aqueous solution by optimizing the composition ratio of the gelatin and beeswax. Our findings provide insight into criteria for making transient electronics on hydrophilic substrates with hydrophobic water diffusion barriers. This proof-of-concept study expands the potential of operating edible electronics in aqueous environments in harmony with the human body and nature.

摘要

制造可食用设备使体内诊断和治疗变得更加容易,而且不会有滞留的风险;然而,食物材料通常较软,会吸收水分子,并不适合电子设备。在这里,我们使用明胶-蜂蜡复合材料制造了一种可食用的水扩散阻挡膜,用于封装瞬态电子设备。疏水的蜂蜡和亲水的明胶本来就很难混合;因此,我们只是通过将温度升高到足以使材料熔化并剧烈搅拌的程度来简单地制造乳液。当它们冷却时,具有相对较高凝固温度的蜂蜡会聚集并形成微球,从而增加明胶凝胶的粘弹性并固定在膜中的乳液结构。热响应明胶使屏障具有降解性,其粘性也可实现金属图案化电子器件的转移。此外,我们在薄膜上设计了一个可食用的谐振器,并在腹部虚拟环境中演示了其操作;通过优化明胶和蜂蜡的组成比例,使谐振器在温暖的水溶液中具有可降解性。我们的研究结果为在具有疏水水扩散阻挡层的亲水基底上制造瞬态电子设备提供了一些见解。这项概念验证研究扩展了可食用电子设备在与人体和自然和谐共处的水介质环境中运行的潜力。

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