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Updated: Aug 25, 2026

Microfabrication of Chip-sized Scaffolds for Three-dimensional Cell cultivation
Published on: May 12, 2008
Data-efficient generation of pore-scale microstructures for rock-on-chip design
Ge Zhang1, Emma Li1, Anthony R Kovscek1
1Department of Energy Science and Engineering, Stanford University, 367 Panama St, Stanford, California, USA. kovscek@stanford.edu.
None:
We present a unified digital-to-experimental workflow that advances the integration of single-image diffusion-based rock generation with connectivity conditioning, scalable texture synthesis, and microfluidic experimentation, enabling statistically realistic generated images to be converted into hydraulically functional, fabrication-ready porous media. For each reference rock image across multiple lithologies, a separate SinDiffusion model is trained to generate statistically consistent pore-scale realizations that preserve key features of the input structure. Quantitative evaluation using intensity statistics, porosity, Minkowski functionals, connectivity metrics, and pore-shape eccentricity confirms preservation of multi-scale morphological characteristics. The generated images are further processed through percolation-constrained thresholding and texture synthesis to produce fabrication-ready designs with controlled connectivity and arbitrary geometries. Additional geometric and flow-property analyses across the four workflow stages show that the final designs retain comparable structural and transport-relevant characteristics while satisfying microfluidic fabrication requirements. The digital layouts are translated into rock-on-chip microfluidics via maskless photolithography and used for CO2 drying and salt precipitation experiments. Homogeneous and artificially fractured sandstone-like configurations demonstrate the workflow's ability to resolve structure-dependent drying and precipitation patterns, with fractures promoting localized deposition and delayed clogging. Experiments on multiple realizations generated from the same input image show a consistent qualitative sequence of CO2 displacement, brine depletion, and salt accumulation, while capturing realization-specific variability in phase evolution.

