The University of Tokyo · 재료과학
카즈후 다이초 교수의 연구실은 식물 세포벽에서 유래한 나노셀룰로오스, 특히 셀룰로오스 나노섬유(CNF)와 미세결정체의 구조-성능 상관관계를 중심으로 연구를 진행하고 있습니다. 고순도·고결정성 나노셀룰로오스의 진단 및 특성화를 위해 진공 및 분광 분석 기법(예: 13C CP/MAS NMR, 헬륨 가스 피크니오메트리)을 응용하며, 결정계계의 상호작용, 계면 구조, 진정 밀도와의 관계를 규명하고자 합니다. 특히, 결합된 나노섬유의 기계적·열적 성능 향상 메커니즘과 결정성 복원 기술에 초점을 맞추고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
In trees, a-few-nanometers-wide crystalline fibrils of cellulose are tightly bundled with other biopolymers, such as lignin and hemicelluloses, to form robust cell walls. Cellulose nanofibers (CNFs) are obtained by successive treatments including the purification, modification, and disintegration of cell-wall cellulose. Herein, we report that the crystallinity of CNFs is governed by the interface between the bundled cellulose fibrils. The cellulose molecules at the interface or at the surface of
In materials science and crystallography, the true density is an important derived physical quantity of solids. Here we report the correlation of the true density of nanometer-wide fibrillar crystallites of cellulose with their purity, crystallinity, morphology, and surface functionality. In the single fibrils, all the cellulose molecules are uniaxiallly oriented. Thus, the true density indicates the molecular packing density in the single fibrils and is essential for the precise estimation of t
Crystallites form a grain boundary or the inter-crystallite interface. A grain boundary is a structural defect that hinders the efficient directional transfer of mechanical stress or thermal phonons in crystal aggregates. We observed that grain boundaries within an aggregate of crystalline cellulose nanofibers (CNFs) were crystallized by enhancing their inter-crystallite interactions; multiple crystallites were coupled into single fusion crystals, without passing through a melting or dissolving
Abstract Cellulose forms crystalline fibrils, via biosynthesis, that can be just a few nanometers wide. The crystallinity is a structural factor related to material performance. Recently, many routes to isolate these fibrils as nanocellulose have been developed, and there exist various types of nanocellulose with different crystallinities. Quantitative assessment of the crystallinity of nanocellulose is thus essential to advance knowledge in the high performance and functionality of such materia
Regenerated and mercerized celluloses are widely used in our daily life and industries. Examples include clothes, medical supplies, and separation membranes. In such applications, the true density is an important derived physical quantity for refining the structural designs of regenerated and mercerized celluloses. Here, we report the true density-crystallinity correlation of regenerated and mercerized celluloses. Seven samples were prepared through either dissolution-regeneration or mercerizati
Plant cell walls are composed of skeletal cellulose and a filling matrix of hemicelluloses and lignin. Cellulose has slender crystallite units referred to as microfibrils or elementary fibrils, and these crystallites form a dense network skeleton in the cell walls. In this study, we assessed the morphology and crystallinity of individually dispersed microfibrils isolated from the cell walls of wood, cotton, and ramie celluloses. It is well known that microfibrils in higher plants exhibit structu
Abstract The crystallinity of cellulose decreases when bundled microfibrils are dispersed in water as cellulose nanofibers (CNFs) or physically separated into finer nanoscale fibrils or single microfibrils. The crystallinity of these CNFs is recovered when they become densely assembled through the dehydration of the dispersion. In this process, multiple CNFs are assumed to partially fuse, leading to the enlargement of crystallite widths. The mechanism of this CNF fusion is, however, not well und
Wood-derived cellulose nanofiber (CNF) offers excellent electrical insulation, mechanical strength, flexibility, thermal stability, and low thermal expansion, meeting the growing demand for sustainable materials in electronic devices. However, the dielectric properties of CNF-based material crucial for beyond-fifth-generation (B5G) applications at frequencies above 10 GHz remain underexplored. This study investigates dielectric behaviors of CNF films with varying surface functional groups and po
Abstract Crystallite refers to a single crystalline grain in crystal aggregates, and multiple crystallites form a grain boundary or the inter-crystallite interface. A grain boundary is a structural defect that hinders the efficient directional transfer of mechanical stress or thermal phonons in crystal aggregates. We observed that grain boundaries within an aggregate of a-few-nanometers-wide fibrillar crystallites of wood cellulose were crystallized by enhancing their inter-crystallite interacti
Abstract Crystallites form a grain boundary or the inter‐crystallite interface. A grain boundary is a structural defect that hinders the efficient directional transfer of mechanical stress or thermal phonons in crystal aggregates. We observed that grain boundaries within an aggregate of crystalline cellulose nanofibers (CNFs) were crystallized by enhancing their inter‐crystallite interactions; multiple crystallites were coupled into single fusion crystals, without passing through a melting or di
Abstract Crystallite refers to a single crystalline grain in crystal aggregates, and multiple crystallites form a grain boundary or the inter-crystallite interface. A grain boundary is a structural defect that hinders the efficient directional transfer of mechanical stress or thermal phonons in crystal aggregates. We observed that grain boundaries within an aggregate of a-few-nanometers-wide fibrillar crystallites of wood cellulose were crystallized by enhancing their inter-crystallite interacti
The crystallinity of cellulose decreases as the cell wall structure of pulp fibrillates to cellulose nanofibers (CNFs) in water. The decreased crystallinity is partially recovered when the CNFs are reassembled into bulk structures through dehydration. We analyzed the molecular mechanism that underlies these changes in crystallinity via two-dimensional <sup>13</sup>C-<sup>13</sup>C solid-state nuclear magnetic resonance (NMR) spectroscopy. A cellulose sample was extracted from a <sup>13</sup>C-la