How artificial intelligence shapes job anxiety: the mediating role of AI stress

透明度(行为) 心理学 压力源 科技压力 工作表现 应对(心理学) 职业紧张 焦虑 应用心理学 压力(语言学) 对偶(语法数字) 工作压力 工作设计 交易型领导 工作分析 社会心理学 自举(财务) 知识管理 结构方程建模 公司治理 计算机科学 情商 工作态度 认知心理学 调解 人工智能
作者
Lingzhi Brian Fang,Liu Tang,Heng Yang
出处
期刊:Internet Research [Emerald Publishing Limited]
卷期号:36 (3): 1035-1053 被引量:2
标识
DOI:10.1108/intr-09-2024-1462
摘要

Purpose The aim of this study is to address the research gap in understanding the role of AI in the workplace, particularly by investigating how AI fosters job anxiety. By introducing the transactional theory of stress and coping (TTSC), this study engages with the conventional theory of stress and anxiety to determine the dual role of AI features in both exacerbating and alleviating job anxiety. Design/methodology/approach A large-scale survey was conducted, and 675 valid responses were collected. Structural equation modeling (SEM) was employed to analyze the entire theoretical model. A bootstrapping analysis was applied to assess the serial mediating role of AI stress in linking AI features to job anxiety. Findings The results revealed that AI explainability significantly enhances job anxiety. Conversely, algorithm transparency emerges as a mitigating factor, reducing job anxiety. These findings underscore the dual impact of AI, which acts as both a stressor and a potential alleviator depending on its design characteristics. Research implications This study highlights that algorithmic transparency can effectively mitigate AI-induced stress and job anxiety, underscoring the need for firms and managers to implement AI cautiously while strengthening governance merchanisms and prioritizing employee well-being and skill development. AI developers and policymakers should advance human-centered transparency and regulatory safeguards to reduce workplace anxiety and protect employees in AI-enabled environments. Originality/value This study pioneers a focus on the complex effects of AI in the workplace, diverging from conventional research that predominantly emphasizes the supportive role of AI. By integrating the TTSC, this study theoretically advances the understanding of AI stress mechanisms and empirically demonstrates the paradoxical effects of AI features. The dual-role framework offers novel insights for both academics and practitioners in addressing AI-related workplace challenges.
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