How and when AI-driven HRM promotes employee resilience and adaptive performance: A self-determination theory

弹性(材料科学) 心理学 业务 社会心理学 物理 热力学
作者
Hoa Do,Xiaoshuang Lin,Helen Shipton
出处
期刊:Journal of Business Research [Elsevier BV]
卷期号:192: 115279-115279 被引量:29
标识
DOI:10.1016/j.jbusres.2025.115279
摘要

• We conceptualize and develop a new measure of AI-driven HRM through the HRM behavioral perspective. • We examine the underlying mechanisms between AI-driven HRM and employee resilience/adaptive performance through the theoretical underpinnings of self-determination theory. • Employee exploration mediates the relationships between AI-driven HRM and employee resilience/adaptive performance. • High levels of trust in AI strengthens the mediated relationships between AI-driven HRM and employee resilience/adaptive performance. Despite growing research on AI in HRM, gaps remain, particularly in understanding the mechanisms through which AI-driven HRM influences employee outcomes. This study addresses this gap by developing a conceptual model to examine how AI-driven HRM impacts employee resilience and adaptive performance. Based on self-determination theory, the model proposes that employee exploration mediates the relationships between AI-driven HRM and employee outcomes. Additionally, trust in AI moderates these relationships. Two studies were conducted to test the hypotheses: Study 1 developed and validated a 12-item AI-driven HRM scale across three samples: 50 managers, 150 employees for exploratory factor analysis (EFA), and 150 employees for confirmatory factor analysis (CFA). Study 2, with data from 274 US employees through a three-wave survey, explored the effects of AI-driven HRM on resilience and performance. Results from Study 2 supported all proposed relationships, thereby offering important implications for both theory and practice in the AI-driven HRM field.
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