TY - JOUR
T1 - Self-enhancing sono-inks enable deep-penetration acoustic volumetric printing
AU - Kuang, Xiao
AU - Rong, Qiangzhou
AU - Belal, Saud
AU - Vu, Tri
AU - López López, Alice M.
AU - Wang, Nanchao
AU - Arıcan, Mehmet Onur
AU - Garciamendez-Mijares, Carlos Ezio
AU - Chen, Maomao
AU - Yao, Junjie
AU - Zhang, Yu Shrike
N1 - Publisher Copyright:
© 2023 American Association for the Advancement of Science. All rights reserved.
PY - 2023/12/1
Y1 - 2023/12/1
N2 - Volumetric printing, an emerging additive manufacturing technique, builds objects with enhanced printing speed and surface quality by forgoing the stepwise ink-renewal step. Existing volumetric printing techniques almost exclusively rely on light energy to trigger photopolymerization in transparent inks, limiting material choices and build sizes. We report a self-enhancing sonicated ink (or sono-ink) design and corresponding focused-ultrasound writing technique for deep-penetration acoustic volumetric printing (DAVP). We used experiments and acoustic modeling to study the frequency and scanning rate–dependent acoustic printing behaviors. DAVP achieves the key features of low acoustic streaming, rapid sonothermal polymerization, and large printing depth, enabling the printing of volumetric hydrogels and nanocomposites with various shapes regardless of their optical properties. DAVP also allows printing at centimeter depths through biological tissues, paving the way toward minimally invasive medicine.
AB - Volumetric printing, an emerging additive manufacturing technique, builds objects with enhanced printing speed and surface quality by forgoing the stepwise ink-renewal step. Existing volumetric printing techniques almost exclusively rely on light energy to trigger photopolymerization in transparent inks, limiting material choices and build sizes. We report a self-enhancing sonicated ink (or sono-ink) design and corresponding focused-ultrasound writing technique for deep-penetration acoustic volumetric printing (DAVP). We used experiments and acoustic modeling to study the frequency and scanning rate–dependent acoustic printing behaviors. DAVP achieves the key features of low acoustic streaming, rapid sonothermal polymerization, and large printing depth, enabling the printing of volumetric hydrogels and nanocomposites with various shapes regardless of their optical properties. DAVP also allows printing at centimeter depths through biological tissues, paving the way toward minimally invasive medicine.
UR - https://www.scopus.com/pages/publications/85179904789
U2 - 10.1126/science.adi1563
DO - 10.1126/science.adi1563
M3 - 文章
C2 - 38060634
AN - SCOPUS:85179904789
SN - 0036-8075
VL - 382
SP - 1148
EP - 1156
JO - Science
JF - Science
IS - 6675
ER -