Real-time in-situ ultrasound monitoring of soft hydrogel 3D printing with subwavelength resolution

Teng Yang, Yuqi Jin, Lee Miller Smith, Narendra B. Dahotre, Arup Neogi
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Abstract

3D bioprinting has excellent potential in tissue engineering, regenerative medicine, and drug delivery systems due to the ability to fabricate intricate structures that are challenging to make with conventional manufacturing methods. However, the complexity of parametric combinations and lack of product quality control have restricted soft hydrogel bioprinting from practical applications. Here we show an in-situ ultrasound monitoring system that reveals the alginate-gelatin hydrogel’s additive manufacturing process. We use this technique to understand the parameters that influenced transient printing behaviors and material properties in approximately real-time. This unique monitoring process can facilitate the detection of minor errors/flaws during the printing. By analyzing the ultrasonic reflected signals in both time and frequency domains, transient printing information can be obtained from 3D printed soft hydrogels during the processes with a depth subwavelength resolution approaching 0.78 $$\lambda$$ . This in-situ technique monitors the printing behaviors regarding the constructed film, interlayer bonding, transient effective elastic constant, layer-wise surface roughness (elastic or plastic), nozzle indentation/scratching, and gravitational spreading. The simulation-verified experimental methods monitored fully infilled printing and gridded pattern printing conditions. Furthermore, the proposed ultrasound system also experimentally monitored the post-crosslinking process of alginate-gelatin hydrogel in CaCl2 solution. The results can optimize crosslinking time by balancing the hydrogel’s stiffness enhancement and geometrical distortion. Arup Neogi and colleagues introduce an in-situ ultrasound monitoring system designed to assess the real-time printing quality of alginate-gelatin hydrogel. The findings show an instantaneous monitoring process, a potential alternative to layer-by-layer monitoring.

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以亚波长分辨率对软水凝胶三维打印进行实时原位超声监测
三维生物打印技术能够制造出传统制造方法难以制造的复杂结构,因此在组织工程、再生医学和给药系统方面具有巨大的潜力。然而,参数组合的复杂性和产品质量控制的缺乏限制了软水凝胶生物打印技术的实际应用。在这里,我们展示了一种原位超声监测系统,它能揭示藻酸盐-明胶水凝胶的增材制造过程。我们利用这种技术近乎实时地了解影响瞬时打印行为和材料特性的参数。这种独特的监测过程有助于检测打印过程中的微小错误/缺陷。通过对超声波反射信号进行时域和频域分析,可以获得三维打印软水凝胶过程中的瞬态打印信息,其亚波长深度分辨率接近 0.78 $$\lambda$$。这种原位技术可监测构建薄膜、层间结合、瞬态有效弹性常数、层间表面粗糙度(弹性或塑性)、喷嘴压痕/划痕和重力扩散等方面的打印行为。模拟验证实验方法监测了全填充印刷和网格图案印刷条件。此外,拟议的超声系统还通过实验监测了藻酸盐-明胶水凝胶在 CaCl2 溶液中的后交联过程。结果表明,通过平衡水凝胶的刚度增强和几何变形,可以优化交联时间。Arup Neogi 及其同事介绍了一种原位超声监测系统,旨在评估藻酸盐明胶水凝胶的实时印刷质量。研究结果表明,这是一种瞬时监测过程,是逐层监测的潜在替代方法。
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