Institut Mensch in komplexen Systemen
Dauerhafte URI für die Sammlunghttps://irf.fhnw.ch/handle/11654/3
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Ergebnisse nach Hochschule und Institut
Publikation A digital tool to build the capacity of leaders to improve working conditions related to psychological health and well-being in teams: intervention approach, prototype, and evaluation design of the web-application “wecoach”(Frontiers Research Foundation, 2020) Grimm, Luisa A.; Bauer, Georg F.; Jenny, Gregor01A - Beitrag in wissenschaftlicher ZeitschriftPublikation Acceptance of an internet-based team development tool aimed at improving work-related well-being in nurses: cross-sectional study(JMIR Publications, 22.04.2022) Broetje, Sylvia; Bauer, Georg F.; Jenny, Gregor01A - Beitrag in wissenschaftlicher ZeitschriftPublikation Is the health-awareness of leaders related to the working conditions, engagement, and exhaustion in their teams? A multi-level mediation study(BioMed Central, 24.10.2021) Grimm, Luisa A.; Bauer, Georg F.; Jenny, Gregor01A - Beitrag in wissenschaftlicher ZeitschriftPublikation New work - new interventions: digital occupational health interventions and the co-creation of a human-centered future of work(Stockholm University Press, 2023) Jenny, Gregor; Bauer, Georg F.01A - Beitrag in wissenschaftlicher ZeitschriftPublikation Development of a Generic Workshop Appraisal Scale (WASC) for organizational health interventions and evaluation(Frontiers Research Foundation, 18.08.2020) Fridrich, Annemarie; Bauer, Georg F.; Jenny, Gregor J.01A - Beitrag in wissenschaftlicher ZeitschriftPublikation Baseline psychosocial and affective context characteristics predict outcome expectancy as a process appraisal of an organizational health intervention(American Psychological Association, 01.02.2020) Lehmann, Anja I.; Brauchli, Rebecca; Jenny, Gregor J.; Füllemann, Désirée; Bauer, Georg F.This study aimed to examine how far group-level psychosocial and affective factors, as a relevant context, predict outcome expectancy as a process appraisal of an organizational health intervention. For this purpose, data from a university hospital (N = 250 representatives from 29 nursing wards) were collected. Participants took part in an intervention consisting of 4-day workshops designed to improve psychosocial working conditions. Employee surveys covered baseline psychosocial (job demands and job resources) and affective aspects (valence and positive and negative activation) as context variables. At the end of the workshops, participants evaluated the intervention process with the outcome expectancy scale. Applying a multilevel approach, the results indicated that both baseline psychosocial characteristics (job resources, in particular managerial support) and baseline affective factors (valence) as relevant context characteristics were related to the appraisal of the intervention process (outcome expectancy). The post hoc mediation analysis further showed that the affective context (valence) mediated the relation between job resources (managerial support) and outcome expectancy. There was no relation between job demands and outcome expectancy as well as between negative activation and outcome expectancy. This study shows that already healthy contexts with good psychosocial working conditions and well-being relate to a beneficial intervention process. Specifically, this study highlights the essential role of affects that influence process appraisals. These affects are, in turn, influenced by the psychosocial context. (PsycInfo Database Record (c) 2021 APA, all rights reserved)01A - Beitrag in wissenschaftlicher ZeitschriftPublikation «Resources-Demands Ratio»: Translating the JD-R-Model for company stakeholders(American Psychological Association, 27.11.2019) Jenny, Gregor J.; Bauer, Georg F.; Füllemann, Désirée; Broetje, Sylvia; Brauchli, RebeccaObjectives Practitioners and organizational leaders are calling for practical ways to explain and monitor factors that affect workplace health and productivity. This article builds on the well‐established Job Demands‐Resources (JD‐R) model and proposes an empirically tested ratio that aggregates indicators of job resources and demands. In this study, we calculate a ratio of generalizable job resources and demands derived from the JD‐R model and then translate the ratio into the language of company stakeholders. Methods We calculated a ratio based on measures applied in a large stress management intervention study (n = 2983) and report the findings from cross‐sectional analysis with health and productivity outcomes from same‐source and separate‐source data. Results Findings showed a strong and unambiguous increase in health and productivity measures with each step of increase in the ratio. Loss in explained variance due to aggregation of two factors into a single ratio is small for measures which are known to be predicted by both factors simultaneously. Conclusions A translation and visualization of the ratio that is accessible to practitioners and organizational leaders is presented and its use in companies discussed.01A - Beitrag in wissenschaftlicher Zeitschrift