在纳米尺度上的粗性和弹性模块之间的相互作用:用骨头作为模型材料的方法研究
Alessandro Gambardella1, Gregorio Marchiori1, Melania Maglio1
1Scienze e Tecnologie Chirurgiche, IRCCS Istituto Ortopedico Rizzoli, 40136 Bologna, Italy.
Journal of functional biomaterials
|August 27, 2025
概括
原子力显微镜纳米印记可以可靠地测量生物组织的弹性模量 (E). 准确地计算局部样品粗度 (γs) 对于精确的纳米级机械性质量化至关重要.
科学领域:
- 生物物理
- 材料科学
- 纳米技术
背景情况:
- 原子力显微镜 (AFM) 纳米印记对于亚细胞机械分析至关重要.
- 纳米级弹性模量 (E) 测量通常是不可靠的,因为没有定位的样品粗度.
- 了解粗度的影响是提高AFM纳米印记精度的关键.
研究的目的:
- 严格重新检查AFM纳米印记中的粗性解释.
- 验证每一个缩点的局部粗度 (γs) 的方法.
- 确定局部粗度和弹性模量 (E) 值之间的准确相关性.
主要方法:
- 在小鼠皮骨上使用两根AFM尖端进行了80个纳米印记.
- 在所有测量中保持了10nm的最大透深度.
- 在每个纳米位的量化局部粗度 (γs).
主要成果:
- 在弹性模量 (E) 和局部粗度 (γs) 之间观察到轻微的下降趋势.
- 当局粗度 (γs) 低于10nm时,90%的E值被认为是可靠的 (R2 > 0.90).
- 即使在低粗度 (γs = 0) 中也观察到E值的显著分散 (超过50%).
结论:
- 可实现弹性模量 (E) 与局部粗度 (γs) 的准确相关性.
- 局部粗度对纳米级机械性能测量有显著影响.
- 一个尖端到样本的接触模型解释了骨纳米级地形上的粗异质效应.
相关概念视频
Strain and Elastic Modulus
4.1K
The quantity that describes the deformation of a body under stress is known as strain. Strain is given as a fractional change in either length, volume, or geometry under tensile, volume (also known as bulk), or shear stress, respectively, and is a dimensionless quantity. The strain experienced by a body under tensile or compressive stress is called tensile or compressive strain, respectively. In contrast, the strain experienced under bulk stress and shear stress is known as volume and shear...
4.1K
Relation between Poisson's ratio, Modulus of Elasticity and Modulus of Rigidity
326
Deformation occurs in axial and transverse directions when an axial load is applied to a slender bar. This deformation impacts the cubic element within the bar, transforming it into either a rectangular parallelepiped or a rhombus, contingent on its orientation. This transformation process induces shearing strain. Axial loading elicits both shearing and normal strains. Applying an axial load instigates equal normal and shearing stresses on elements oriented at a 45° angle to the load axis.
326
Hooke's Law
552
Hooke's law, a pivotal principle in material science, establishes that the strain a material undergoes is directly proportional to the applied stress, defined by a factor called the modulus of elasticity or Young's modulus.
552
Bending of Members Made of Several Materials
261
In analyzing a structural member composed of two different materials with identical cross-sectional areas, it is crucial to understand how their distinct elastic properties affect the member's response under load. The analysis involves assessing stress and strain distributions using the transformed section concept, which accounts for variations in material properties.
Hooke's Law determines stress in each material, stating that stress is proportional to strain but varies due to each...
Hooke's Law determines stress in each material, stating that stress is proportional to strain but varies due to each...
261
Bone Remodeling
38.5K
Bone remodeling is a continuous and balanced process of bone resorption by osteoclasts and bone formation by osteoblasts. In adults, it helps maintain bone mass and calcium homeostasis. While mechanical stress can stimulate turnover as part of the normal maintenance and reparative process, several hormones also regulate bone remodeling.
38.5K
Dynamic Modulus of Elasticity of Concrete
539
The dynamic modulus of elasticity assesses how a concrete structure deforms under impact or dynamic loads. It is typically higher than the static modulus of elasticity, measured under slow, steady loading conditions.
The sonic test is a common method to determine the dynamic modulus. In this test, a concrete beam, sized either 6 x 6 x 30 inches or 4 x 4 x 20 inches, is clamped at its center. Vibrations are initiated at one end of the beam by an electromagnetic exciter unit powered by...
The sonic test is a common method to determine the dynamic modulus. In this test, a concrete beam, sized either 6 x 6 x 30 inches or 4 x 4 x 20 inches, is clamped at its center. Vibrations are initiated at one end of the beam by an electromagnetic exciter unit powered by...
539


