EDA 2025 Launch Event

We are ready to share the latest release of our electronic design automation (EDA) software suites.

是德科技解决方案能够对先进 CMOS 和化合物半导体器件进行表征并建立其模型。 是德科技提供了完整的端到端建模解决方案,从自动化测量、器件模型提取、认证到最终的流程设计套件(PDK)验证都包括在内。 是德科技还提供全面的建模服务,并由我们的专家工程师和先进实验室给予全力支持。

查看设备建模和特性方面的新内容

器件建模产品的关键优势

EDA 2025 网络研讨会

观看这段简短的视频,了解 Keysight EDA 创新技术如何帮助您进行设备建模和特性分析。然后注册您所在地区的发布会网络研讨会。网络研讨会开始后,选择您想要的讨论主题。

器件建模和特性

Frequently Asked Questions

Device modeling refers to the process of creating mathematical and physical models to predict the behavior of semiconductor devices, such as transistors, diodes, and capacitors. These models help electronic designers understand how these components perform in various real-world applications.

Device modeling enables design engineers to optimize their designs for specific requirements, such as maximizing speed or minimizing power consumption. By simulating device behavior under different conditions, engineers can effectively reduce the need for expensive physical prototypes, thereby saving time and resources.

The typical flow of device modeling and characterization consists of four critical steps, with each integral to the quality and reliability of the final models:

  1. Data measurement and analysis: This first stage involves gathering measured data from various semiconductor devices across different wafers and temperatures. The focus here is on precision and efficiency.
  2. Model extraction: Model extraction complexity varies with the technology and specific device model. Device modeling software is instrumental at this stage, offering advanced graphics, links to circuit simulators, optimizers, and manual tuners to extract parameters. For RF modeling, custom programming might be necessary to account for parasitic effects in S-parameters.
  3. Model validation: This step is fundamental to ensure the reliability of the modeling libraries by running simulations over extended bias, geometry, and frequency conditions. Tools like Device Modeling MQA (Model Quality Assurance) can automate much of this process, simplifying the testing and helping to identify and report any issues efficiently.
  4. Integration into process design kits (PDKs): The final step involves integrating device modeling libraries into PDKs. A critical but challenging aspect of this phase is PDK validation, which involves extensive re-verification of sample designs whenever there's a new release of a simulator software version or an update to a design kit. The goal is to ensure that the PDKs remain accurate and consistent across different updates.

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