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AI literacy as both bridge and buffer: unraveling its dual role between research stressors and teaching excellence
Guimei Yang1, Feng Liu2, Qingjie Zhao1
1School of Business, Fuyang Normal University, Fuyang, China.
Introduction:
The persistent tension between research and teaching poses a significant challenge to sustainable development in higher education. Grounded in the Challenge-Hindrance Stressors Framework and Dynamic Capabilities Theory, this study investigates the dual role of faculty artificial intelligence (AI) literacy, conceptualized as a dynamic capability to sense, seize, and reconfigure AI resources to reshape the impact of research stressors on teaching excellence.
Methods:
We conducted a survey of 253 faculty members from Chinese universities. The proposed model, which delineates the asymmetric effects of challenge and hindrance research stressors, the mediating role of teaching-research time conflict, and the dual mechanisms of AI literacy, was tested using partial least squares structural equation modeling.
Results:
Challenge research stressors significantly enhanced teaching excellence, both directly and indirectly through increased AI literacy. Conversely, hindrance stressors exacerbated teaching-research time conflict but did not exhibit a direct negative effect on teaching excellence. Notably, AI literacy demonstrated a dual mechanism: it mediated the positive effect of challenge stressors and also buffered the negative impact of teaching-research time conflict on teaching excellence.
Discussion:
These findings suggest that when AI literacy functions as a dynamic capability, the competitive relationship between research and teaching can become synergistic. The study extends the Challenge-Hindrance Stressors Framework by showing that different types of research pressure have distinct implications for teaching outcomes. It also contextualizes the Conservation of Resources Theory by identifying AI literacy as a boundary condition: in its presence, the conventional mechanism of resource drain is disrupted. By reframing AI literacy as a capability for resource reconfiguration rather than merely a technical skill, this research suggests a potential direction for institutions: moving from mitigating research pressure to leveraging generative AI for faculty development. Strengthening AI literacy may therefore serve as a practical lever for advancing student-centered education and the broader sustainability agenda.
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