Publications by authors named "Hyunwoo Jo"

Introduction: The decellularization and recellularization is a promising approach for tissue engineering and regenerative medicine. However, the decellularization process depletes important components like glycosaminoglycans (GAGs), affecting cell attachment and causing immunogenicity. Studies have explored various surface modification strategies to enhance recellularization.

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InAs semiconductor nanocrystals (NCs) exhibit intriguing electrical/optoelectronic properties suitable for next-generation electronic devices. Although there is a need for both - and -type semiconductors in such devices, InAs NCs typically exhibit only -type characteristics. Here, we report InAs NCs with controlled semiconductor polarity.

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Recently, the field of regenerative medicine has made great strides in the development of new treatments for various organ dysfunctions. One of the most promising new approaches is the use of three-dimensional (3D) printing and autologous tissues. In this study, we evaluated the safety of a 3D-printed autologous omentum patch to kidneys using large animals.

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Recent advances in the field of tissue engineering and regenerative medicine have contributed to the repair of damaged tissues and organs. Renal dysfunctions such as chronic kidney disease (CKD) are considered intractable owing to its cellular heterogeneity. In addition, the absence of definitive treatment options other than dialysis or kidney transplantation in advanced CKD.

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Article Synopsis
  • Electroluminescence from quantum dots (QDs) can enhance future displays with vibrant, custom shapes and colors, but a new technique is needed to pattern these small structures nondestructively.* -
  • A novel approach using branched light-driven ligand crosslinkers (LiXers) allows for the creation of multicolored QD patterns on a micrometer scale without damaging the QDs' key properties.* -
  • This method preserves the photoluminescence and electroluminescence of QDs, extends their device lifespan, and is suitable for industrial application, potentially revolutionizing display technology with environmentally friendly materials.*
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Colloidal quantum dots (QDs) stand at the forefront of a variety of photonic applications given their narrow spectral bandwidth and near-unity luminescence efficiency. However, integrating luminescent QD films into photonic devices without compromising their optical or transport characteristics remains challenging. Here we devise a dual-ligand passivation system comprising photocrosslinkable ligands and dispersing ligands to enable QDs to be universally compatible with solution-based patterning techniques.

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The hole density of individual copper sulfide nanocrystals (CuS NCs) is determined from the stoichiometric mismatch () between copper and sulfide atoms. Consequently, the electronic properties of the material vary over a range of . To exploit CuS NCs in devices, assemblies of NCs are typically required.

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Exploiting the long-range polarizability of an electrolyte based on ion migration, electric double-layer transistors (EDLTs) can be constructed in an unconventional configuration; here, the gate electrode is placed coplanarly with the device channel. In this paper, we demonstrate the influence of the distance factors of the electrolyte layer on the operation of EDLTs with a coplanar gate. As the promptness of the electric double-layer formation depends on the distance between the channel and the gate, the dynamic characteristics of a remote-gated transistor degrade with long distances.

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Active control of metamaterial properties is critical for advanced terahertz (THz) applications. However, the tunability of THz properties, such as the resonance frequency and phase of the wave, remains challenging. Here, a new device design is provided for extensively tuning the resonance properties of THz metamaterials.

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We present nonvolatile transistor memory devices that rely on the formation of electric double layer (EDL) at the semiconductor-electrolyte interface. The two critical functional components of the devices are the ion gel electrolyte and gold nanoparticles (NPs). The ion gel electrolyte contains ionic species for EDL formation that allow inducing charges in the semiconductor-electrolyte interface.

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