Department of Applied Chemistry, Faculty of Science and Technology, Keio University, 3-14-1 Hiyoshi, Kohoku-ku, Yokohama, 223-8522, Japan.
Department of Surgery, School of Medicine, Keio University, 35 Shinanomachi, Shinjuku-ku, Tokyo, 160-8582, Japan.
Adv Sci (Weinh). 2023 Jan;10(3):e2206097. doi: 10.1002/advs.202206097. Epub 2022 Dec 11.
Imaging and measuring compression stresses secure a safe and healthy life. Compression stresses in kPa range are not easily detected by conventional mechanoresponsive materials because microscopic molecular motion of the chromophores is not induced by such weak stresses. Moreover, imaging of the stress distribution is not achieved so far. The present study shows a sponge device combining two stimuli-responsive materials, a capsule releasing interior liquid and color-changing polymer in responses to compression stress and chemical stimulus, respectively. The stimuli-responsive capsule is dispersed on a melamine sponge comprised of the fibers with coating the layered polydiacetylene (PDA). The application of weak compression stresses induces collapse of the capsules, outflow of the interior liquid, and subsequent irreversible color change of PDA. The cascading response in the sponge device colorimetrically enables imaging of the distribution and measuring the strength of the compression stresses in kPa range. Furthermore, the device demonstrates imaging and measuring unknown weak compression stresses applied by the irregular-shaped objects. A couple of clinical issues in surgical operation of intestine are studied using the stress-imaging sponge device. The device and its design strategy can be applied to stress imaging in a variety of fields.
成像和测量压缩应力可确保安全健康的生活。由于传统的机械响应材料不能感应到如此微弱的压力,因此 kPa 范围内的压缩应力不易被检测到。此外,到目前为止还无法实现对压力分布的成像。本研究展示了一种海绵装置,它结合了两种刺激响应材料,即胶囊释放内部液体和变色聚合物,分别响应压缩应力和化学刺激。刺激响应胶囊分散在由纤维组成的三聚氰胺海绵上,纤维涂有层状聚二乙炔(PDA)。施加较弱的压缩应力会导致胶囊的崩溃、内部液体的流出以及 PDA 的后续不可逆颜色变化。海绵装置中的级联反应可实现 kPa 范围内压缩应力分布的成像和强度测量。此外,该装置还可以对不规则形状物体施加的未知弱压缩应力进行成像和测量。使用压力成像海绵装置研究了肠道手术中的几个临床问题。该装置及其设计策略可应用于各种领域的压力成像。