| Literature DB >> 35224537 |
Molly Woerner1, Nichole Sams1,2, Cristian Rivera Nales1,3, Tara Gorstein1, Morgan Johnson2, Brittany A Mosser1,2, Patricia A Areán1,2.
Abstract
INTRODUCTION: Personal technology (e.g., smartphones, wearable health devices) has been leveraged extensively for mental health purposes, with upwards of 20,000 mobile applications on the market today and has been considered an important implementation strategy to overcome barriers many people face in accessing mental health care. The main question yet to be addressed is the role consumers feel technology should play in their care. One underserved demographic often ignored in this discussion are people over the age of 60. The population of adults 60 and older is predicted to double by 2,050 signaling a need to address how older adults view technology for their mental health care.Entities:
Keywords: digital mental health; lived experience; mental health; older adults; technology
Year: 2022 PMID: 35224537 PMCID: PMC8868823 DOI: 10.3389/fdgth.2022.840169
Source DB: PubMed Journal: Front Digit Health ISSN: 2673-253X
Demographics stratified by age (categorized).
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| Unemployed | 87 (30.5%) | 75 (18.8%) | 141 (47.3%) | 303 (30.9%) |
| Unpaid work at home (e.g., primary unpaid caregiver of family member) | 10 (3.5%) | 33 (8.3%) | 6 (2.0%) | 49 (5.0%) |
| Unpaid work out of the home (e.g., volunteerism) | 6 (2.1%) | 3 (0.8%) | 10 (3.4%) | 19 (1.9%) |
| Part time paid work outside the house | 63 (22.1%) | 29 (7.3%) | 21 (7.0%) | 113 (11.5%) |
| Part time paid work at home | 16 (5.6%) | 42 (10.6%) | 50 (16.8%) | 108 (11.0%) |
| Full time paid work outside the house | 80 (28.1%) | 139 (34.9%) | 40 (13.4%) | 259 (26.4%) |
| Full time paid work at home | 23 (8.1%) | 77 (19.3%) | 30 (10.1%) | 130 (13.3%) |
| Missing | 5 | 8 | 4 | 17 |
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| 1 | 69 (27.3%) | 116 (34.8%) | 152 (69.4%) | 337 (41.9%) |
| 2 | 77 (30.4%) | 92 (27.6%) | 49 (22.4%) | 218 (27.1%) |
| 3 | 66 (26.1%) | 69 (20.7%) | 12 (5.5%) | 147 (18.3%) |
| 4 | 24 (9.5%) | 40 (12.0%) | 5 (2.3%) | 69 (8.6%) |
| 5+ | 17 (6.7%) | 16 (4.8%) | 1 (0.5%) | 34 (4.2%) |
| Missing | 37 | 73 | 83 | 193 |
| Yes | 129 (44.6%) | 111 (27.7%) | 38 (12.7%) | 278 (28.1%) |
| No | 140 (48.4%) | 261 (65.1%) | 253 (84.6%) | 654 (66.1%) |
| Not sure | 20 (6.9%) | 29 (7.2%) | 8 (2.7%) | 57 (5.8%) |
| Missing | 1 | 5 | 3 | 9 |
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| Multi-racial | 29 (10.0%) | 33 (8.1%) | 7 (2.3%) | 69 (6.9%) |
| American Indian or Alaska native or indigenous | 0 (0.0%) | 4 (1.0%) | 1 (0.3%) | 5 (0.5%) |
| Asian | 16 (5.5%) | 20 (4.9%) | 1 (0.3%) | 37 (3.7%) |
| Black or African American | 28 (9.7%) | 38 (9.4%) | 8 (2.7%) | 74 (7.4%) |
| Hispanic/Latinx | 30 (10.4%) | 22 (5.4%) | 3 (1.0%) | 55 (5.5%) |
| Middle Eastern or North African | 3 (1.0%) | 1 (0.2%) | 0 (0.0%) | 4 (0.4%) |
| White | 183 (63.3%) | 287 (70.9%) | 280 (93.3%) | 750 (75.5%) |
| Missing | 1 | 1 | 2 | 4 |
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| Hispanic/Latinx | 47 (16.6%) | 52 (12.9%) | 4 (1.3%) | 103 (10.4%) |
| Non-Hispanic/Latinx | 236 (83.4%) | 351 (87.1%) | 296 (98.7%) | 883 (89.6%) |
| Missing | 7 | 3 | 2 | 12 |
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| Female | 203 (70.0%) | 256 (63.4%) | 192 (63.8%) | 651 (65.4%) |
| Male | 66 (22.8%) | 141 (34.9%) | 108 (35.9%) | 315 (31.7%) |
| Transgender, Non-binary, or Gender- nonconforming | 21 (7.2%) | 7 (1.7%) | 1 (0.3%) | 29 (2.9%) |
| Missing | 0 | 2 | 1 | 3 |
| Can't make ends meet | 35 (12.3%) | 62 (15.5%) | 35 (11.7%) | 132 (13.4%) |
| Have just enough to get by | 162 (56.8%) | 164 (41.0%) | 137 (45.7%) | 463 (47.0%) |
| Are comfortable | 88 (30.9%) | 174 (43.5%) | 128 (42.7%) | 390 (39.6%) |
| Missing | 5 | 6 | 2 | 13 |
| Large city | 92 (31.9%) | 92 (22.7%) | 50 (16.6%) | 234 (23.5%) |
| Suburb near a large city | 96 (33.3%) | 150 (36.9%) | 106 (35.1%) | 352 (35.3%) |
| Small city or town | 72 (25.0%) | 109 (26.8%) | 86 (28.5%) | 267 (26.8%) |
| Rural area | 28 (9.7%) | 55 (13.5%) | 60 (19.9%) | 143 (14.4%) |
| Missing | 2 | 0 | 0 | 2 |
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| 290 | 406 | 302 | 998 |
| Mean (SD) | 10.1 (5.5) | 7.5 (5.3) | 5.6 (4.2) | 7.7 (5.3) |
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| 290 | 406 | 302 | 998 |
| Mean (SD) | 9.6 (5.9) | 6.2 (5.6) | 4.2 (4.5) | 6.6 (5.8) |
App, message based care, and telehealth usage stratified by age categorized.
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| No | 131 (46.0%) | 274 (67.8%) | 249 (83.3%) | 654 (66.2%) | |
| Yes | 154 (54.0%) | 130 (32.2%) | 50 (16.7%) | 334 (33.8%) | |
| Missing | 5 | 2 | 3 | 10 | |
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| 0.27 | ||||
| No | 94 (61.0%) | 90 (69.2%) | 35 (70.0%) | 219 (65.6%) | |
| Yes | 60 (39.0%) | 40 (30.8%) | 15 (30.0%) | 115 (34.4%) | |
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| 288 | 405 | 301 | 994 | |
| Mean (SD) | 4.3 (1.2) | 4.2 (1.2) | 4.0 (1.3) | 4.2 (1.2) | |
| Median | 5.0 | 4.0 | 4.0 | 4.0 | |
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| 284 | 405 | 301 | 990 | |
| Mean (SD) | 4.2 (1.3) | 4.1 (1.3) | 3.8 (1.4) | 4.0 (1.4) | |
| Median | 4.5 | 4.0 | 4.0 | 4.0 | |
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| 284 | 403 | 298 | 985 | |
| Mean (SD) | 4.4 (1.1) | 4.2 (1.2) | 4.0 (1.2) | 4.2 (1.2) | |
| Median | 4.0 | 4.0 | 4.0 | 4.0 | |
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| 284 | 404 | 299 | 987 | |
| Mean (SD) | 4.6 (1.2) | 4.4 (1.3) | 4.1 (1.3) | 4.4 (1.3) | |
| Median | 5.0 | 5.0 | 4.0 | 5.0 | |
| 0.79 | |||||
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| 282 | 400 | 299 | 981 | |
| Mean (SD) | 3.3 (1.3) | 3.3 (1.4) | 3.3 (1.4) | 3.3 (1.4) | |
| Median | 3.0 | 4.0 | 3.0 | 3.0 | |
| 0.46 | |||||
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| 286 | 402 | 298 | 986 | |
| Mean (SD) | 3.2 (1.6) | 3.3 (1.5) | 3.2 (1.6) | 3.2 (1.6) | |
| Median | 3.0 | 3.0 | 3.0 | 3.0 | |
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| 284 | 401 | 300 | 985 | |
| Mean (SD) | 4.1 (1.5) | 3.7 (1.5) | 3.7 (1.5) | 3.8 (1.5) | |
| Median | 5.0 | 4.0 | 4.0 | 4.0 | |
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| 290 | 406 | 302 | 998 | |
| Mean (SD) | 4.7 (1.1) | 4.7 (1.1) | 4.5 (1.1) | 4.6 (1.1) | |
| Median | 5.0 | 5.0 | 5.0 | 5.0 | |
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| 288 | 405 | 302 | 995 | |
| Mean (SD) | 4.5 (1.3) | 4.5 (1.2) | 4.2 (1.3) | 4.4 (1.3) | |
| Median | 5.0 | 5.0 | 4.0 | 5.0 | |
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| 285 | 404 | 299 | 988 | |
| Mean (SD) | 4.7 (1.0) | 4.6 (1.1) | 4.3 (1.2) | 4.6 (1.1) | |
| Median | 5.0 | 5.0 | 5.0 | 5.0 | |
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| 284 | 405 | 301 | 990 | |
| Mean (SD) | 4.7 (1.2) | 4.7 (1.2) | 4.3 (1.3) | 4.6 (1.2) | |
| Median | 5.0 | 5.0 | 5.0 | 5.0 | |
Chi-Square p-value;
Kruskal-Wallis p-value. .
Among those who have considered using an app for their mental health. Note: scale range 1–6; higher score reflect agreement.
Treatment preference stratified by age (categorized).
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| No | 93 (32.4%) | 104 (25.7%) | 61 (20.3%) | 258 (26.0%) | |
| Yes | 194 (67.6%) | 301 (74.3%) | 240 (79.7%) | 735 (74.0%) | |
| Missing | 3 | 1 | 1 | 5 | |
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| 0.85 | ||||
| No | 184 (63.9%) | 257 (63.5%) | 197 (65.4%) | 638 (64.2%) | |
| Yes | 104 (36.1%) | 148 (36.5%) | 104 (34.6%) | 356 (35.8%) | |
| Missing | 2 | 1 | 1 | 4 | |
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| 0.17 | ||||
| No | 39 (13.8%) | 73 (18.3%) | 58 (19.3%) | 170 (17.3%) | |
| Yes | 244 (86.2%) | 327 (81.8%) | 242 (80.7%) | 813 (82.7%) | |
| Missing | 7 | 6 | 2 | 15 | |
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| One-to-one in-person therapy | 169 (59.1%) | 183 (45.9%) | 168 (56.6%) | 520 (53.0%) | |
| Tele-health | 54 (18.9%) | 123 (31.6%) | 75 (25.3%) | 255 (26.0%) | |
| Message-based Care | 39 (13.6%) | 44 (11.0%) | 38 (12.8%) | 121 (12.3%) | |
| Mobile Mental Health App | 24 (8.4%) | 46 (11.5%) | 16 (5.4%) | 86 (8.8%) | |
| Missing | 4 | 7 | 5 | 16 | |
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| Message-based Care | 115 (39.7%) | 180 (44.3%) | 141 (46.7%) | 436 (43.7%) | 0.21 |
| Mobile Mental Health Apps | 90 (31.0%) | 155 (38.2%) | 138 (45.7%) | 383 (38.4%) |
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| Tele-health | 93 (32.1%) | 105 (25.9%) | 62 (20.5%) | 260 (26.1%) |
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| Prefer not to answer | 93 (32.1%) | 105 (25.9%) | 62 (20.5%) | 260 (26.1%) |
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| One-to-one in-person therapy / counseling from a licensed clinician | 34 (11.7%) | 48 (11.8%) | 41 (13.6%) | 123 (12.3%) | 0.73 |
Chi-Square p-value; .
Role size and themes mentioned in qualitative responses.
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| None | 14 | 4.9 | 29 | 7.5 | 31 | 10.8 | 74 | 7.8 |
| Small or limited scope | 43 | 15.2 | 54 | 14.0 | 60 | 21.0 | 157 | 16.5 |
| General or Complementary | 159 | 56.2 | 224 | 58.2 | 151 | 52.8 | 534 | 56.0 |
| Large | 67 | 23.7 | 78 | 20.3 | 44 | 15.4 | 189 | 19.8 |
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| Paired with a Provider | 74 | 25.5 | 118 | 29.1 | 100 | 33.1 | 292 | 29.3 |
| For Comm and Admin | 45 | 15.5 | 50 | 12.3 | 57 | 18.9 | 153 | 15.2 |
| Monitoring | 25 | 8.6 | 42 | 10.3 | 27 | 8.9 | 94 | 9.3 |
| Access to care | 101 | 32.5 | 130 | 41.8 | 80 | 25.7 | 311 | 31.1 |
| Specific recommendation | 70 | 24.1 | 110 | 27.1 | 79 | 26.2 | 259 | 26.0 |