Abstract

The ongoing COVID-19 pandemic has presented us with an unprecedented global emergency that severely threatens the lives of millions of people around the world. In response to this existential crisis, state governments have taken drastic containment measures to limit the spread of the coronavirus. The consequential lockdowns have disrupted production and economic activity and had profound impacts on major industries. The heightened financial risk has significantly slowed down new investments while stoking fears of a looming economic recession. Indeed, the pandemic-induced strong reduction in global demand has resulted in sharp falls in energy prices leading to a temporary market distortion that may impede progress in the deployment of new renewable energy projects. Besides, some countries could be at risk of falling short of their 2020 national binding targets given the lack of effective policies required to facilitate new renewable energy investments. Considering the present impacts of the COVID-19 pandemic on the global energy market, there are opportunities to highlight the important role of renewables while making the case for clean energy investments, especially in the electricity sector. This review aims to provide important insights by analyzing the significant impacts of the COVID-19 pandemic on the global energy market. On the other hand, sustainable energy strategies are also discussed in detail. Finally, lessons learned amidst the costly battle against this invisible enemy could help policymakers and government leaders in identifying the appropriate renewable energy paths for their countries in a post-pandemic future.

References

1.
Wang
,
Q.
, and
Su
,
M.
,
2020
, “
Drivers of Decoupling Economic Growth From Carbon Emission—An Empirical Analysis of 192 Countries Using Decoupling Model and Decomposition Method
,”
Environ. Impact Assess. Rev.
,
81
, p.
106356
.
2.
W. H. Organization
,
2020
, “
Coronavirus Disease (COVID-2019) Situation Reports—87
.”
3.
Bai
,
Y.
,
Yao
,
L.
,
Wei
,
T.
,
Tian
,
F.
,
Jin
,
D.-Y.
,
Chen
,
L.
, and
Wang
,
M.
,
2020
, “
Presumed Asymptomatic Carrier Transmission of COVID-19
,”
JAMA
,
323
(
14
), pp.
1406
1407
.
4.
Lai
,
C.-C.
,
Shih
,
T.-P.
,
Ko
,
W.-C.
,
Tang
,
H.-J.
, and
Hsueh
,
P.-R.
,
2020
, “
Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) and Corona Virus Disease-2019 (COVID-19): The Epidemic and the Challenges
,”
Int. J. Antimicrob. Agents
,
55
(
3
), p.
105924
.
5.
Le
,
V. V.
,
Huynh
,
T. T.
,
Ölçer
,
A.
,
Hoang
,
A. T.
,
Le
,
A. T.
,
Nayak
,
S. K.
, and
Pham
,
V. V.
,
2020
, “
A Remarkable Review of the Effect of Lockdowns During COVID-19 Pandemic on Global PM Emissions
,”
Energy Sources Part A Recovery Util. Environ. Eff.
, pp.
1
16
.
6.
Gopinath
,
G.
,
2020
, “
The Great Lockdown: Worst Economic Downturn Since the Great Depression
,”
IMFBlog–Insights Anal. Econ. Financ
.
7.
Fernandes
,
N.
,
2020
, “
Economic Effects of Coronavirus Outbreak (COVID-19) on the World Economy
,”
SSRN 3557504
.
8.
Hoang
,
A. T.
,
Huynh
,
T. T.
,
Nguyen
,
X. P.
,
Nguyen
,
T. K. T.
, and
Le
,
T. H.
,
2021
, “
An Analysis and Review on the Global NO2 Emission During Lockdowns in COVID-19 Period
,”
Energy Sources Part A Recover. Util. Environ. Eff.
,
9.
Nguyen
,
X. P.
,
Hoang
,
A. T.
,
Ölçer
,
A. I.
, and
Huynh
,
T. T.
,
2021
, “
Record Decline in Global CO2 Emissions Prompted by COVID-19 Pandemic and Its Implications on Future
,”
Energy Sources Part A Recover. Util. Environ. Eff.
,
10.
W. H. Organization
,
2020
, “
Survey Tool and Guidance: Rapid, Simple, Flexible Behavioural Insights on COVID-19: 29 July 2020
.”
11.
Fell
,
M. J.
,
Pagel
,
L.
,
Chen
,
C.-f.
,
Goldberg
,
M. H.
,
Herberz
,
M.
,
Huebner
,
G. M.
,
Sareen
,
S.
, and
Hahnel
,
U. J. J.
,
2020
, “
Validity of Energy Social Research During and After COVID-19: Challenges, Considerations, and Responses
,”
Energy Res. Soc. Sci.
,
68
, p.
101646
.
12.
Slack
,
M. K.
, and
Draugalis
,
J. R.
, Jr
,
2001
, “
Establishing the Internal and External Validity of Experimental Studies
,”
Am. J. Health-Syst. Pharm.
,
58
(
22
), pp.
2173
2181
.
13.
Grandin
,
J.
, and
Sareen
,
S.
,
2020
, “
What Sticks? Ephemerality, Permanence and Local Transition Pathways
,”
Environ. Innov. Soc. Transitions
,
36
, pp.
72
82
.
14.
Maxwell
,
H.
,
2020
, “
Will the COVID-19 Crisis Slow the Global Shift to Renewable Energy?
15.
Landy
,
J. F.
,
Jia
,
M. L.
,
Ding
,
I. L.
,
Viganola
,
D.
,
Tierney
,
W.
,
Dreber
,
A.
,
Johannesson
,
M.
,
Pfeiffer
,
T.
,
Ebersole
,
C. R.
,
Gronau
,
Q. F.
, and
Ly
,
A.
,
2020
, “
Crowdsourcing Hypothesis Tests: Making Transparent How Design Choices Shape Research Results
,”
Psychol. Bull.
,
146
(
5
), p.
451
.
16.
Uhlmann
,
E. L.
,
Ebersole
,
C. R.
,
Chartier
,
C. R.
,
Errington
,
T. M.
,
Kidwell
,
M. C.
,
Lai
,
C. K.
,
McCarthy
,
R. J.
,
Riegelman
,
A.
,
Silberzahn
,
R.
, and
Nosek
,
B. A.
,
2019
, “
Scientific Utopia III: Crowdsourcing Science
,”
Perspect. Psychol. Sci.
,
14
(
5
), pp.
711
733
.
17.
Dutta
,
A.
,
Bouri
,
E.
,
Uddin
,
G. S.
, and
Yahya
,
M.
,
2020
, “
Impact of COVID-19 on Global Energy Markets
,”
IAEE Energy Forum COVID-19 Issue.
vol.
2020
, pp.
26
29
.
18.
Edomah
,
N.
, and
Ndulue
,
G.
,
2020
, “
Energy Transition in a Lockdown: An Analysis of the Impact of COVID-19 on Changes in Electricity Demand in Lagos Nigeria
,”
Global Transitions
,
2
, pp.
127
137
.
19.
Hosseini
,
S. E.
,
2020
, “
An Outlook on the Global Development of Renewable and Sustainable Energy at the Time of COVID-19
,”
Energy Res. Soc. Sci.
,
68
, p.
101633
.
20.
Global Wind Energy Council
.”
21.
Wood Mackenzie | Energy Research & Consultancy
.”
22.
Eroğlu
,
H.
,
2020
, “
Effects of COVID-19 Outbreak on Environment and Renewable Energy Sector
,”
Environ. Dev. Sustain.
, pp.
1
9
.
23.
McDonnell
,
T.
,
2020
, “
Coronavirus Is Wiping Out Clean Energy Jobs in the US
.” https://qz.com/1840363/covid-19-is-wiping-out-clean-energy-jobs-in-the-us/. Accessed April 30, 2020.
24.
Birol
,
F.
,
2020
, “
Put Clean Energy at the Heart of Stimulus Plans to Counter the Coronavirus Crisis—Analysis—IEA
,” IEA
.
25.
More U.S. Coal-Fired Power Plants Are Decommissioning as Retirements Continue—Today in Energy—U.S. Energy Information Administration (EIA)
,”
2020
.
26.
Graff
,
M.
, and
Carley
,
S.
,
2020
, “
COVID-19 Assistance Needs to Target Energy Insecurity
,”
Nat. Energy
,
5
(
5
), pp.
352
354
.
27.
Pareek
,
M.
,
Bangash
,
M. N.
,
Pareek
,
N.
,
Pan
,
D.
,
Sze
,
S.
,
Minhas
,
J. S.
,
Hanif
,
W.
, and
Khunti
,
K.
,
2020
, “
Ethnicity and COVID-19: An Urgent Public Health Research Priority
,”
Lancet
,
395
(
10234
), pp.
1421
1422
.
28.
Bertrand
,
M.
,
Briscese
,
G.
,
Grignani
,
M.
, and
Nassar
,
S.
,
2020
,
How Are Americans Coping With the COVID-19 Crisis? 7 Key Findings From Household Survey
,
Rustandy Center| Chicago Booth
.
April
, vol.
23
.
29.
O. S. Collaboration
,
2015
, “
Estimating the Reproducibility of Psychological Science
,”
Science
,
349
(
6251
).
30.
Klein
,
R. A.
,
Vianello
,
M.
,
Hasselman
,
F.
,
Adams
,
B. G.
,
Adams
,
R. B.
,
Alper
,
S.
,
Aveyard
,
M.
,
Axt
,
J. R.
,
Babalola
,
M. T.
,
Bahník
,
Š.
,
Batra
,
R.
,
Berkics
,
M.
,
Bernstein
,
M. J.
,
Berry
,
D. R.
,
Bialobrzeska
,
O.
,
Binan
,
E. D.
,
Bocian
,
K.
,
Brandt
,
M. J.
,
Busching
,
R.
,
Rédei
,
A. C.
,
Cai
,
H.
,
Cambier
,
F.
,
Cantarero
,
K.
,
Carmichael
,
C. L.
,
Ceric
,
F.
,
Chandler
,
J.
,
Chang
,
J.-H.
,
Chatard
,
A.
,
Chen
,
E. E.
,
Cheong
,
W.
,
Cicero
,
D. C.
,
Coen
,
S.
,
Coleman
,
J. A.
,
Collisson
,
B.
,
Conway
,
M. A.
,
Corker
,
K. S.
,
Curran
,
P. G.
,
Cushman
,
F.
,
Dagona
,
Z. K.
,
Dalgar
,
I.
,
Dalla Rosa
,
A.
,
Davis
,
W. E.
,
de Bruijn
,
M.
,
De Schutter
,
L.
,
Devos
,
T.
,
de Vries
,
M.
,
Doğulu
,
C.
,
Dozo
,
N.
,
Dukes
,
K. N.
,
Dunham
,
Y.
,
Durrheim
,
K.
,
Ebersole
,
C. R.
,
Edlund
,
J. E.
,
Eller
,
A.
,
English
,
A. S.
,
Finck
,
C.
,
Frankowska
,
N.
,
Freyre
M.-Á.
,
Friedman
,
M.
,
Galliani
,
E. M.
,
Gandi
,
J. C.
,
Ghoshal
,
T.
,
Giessner
,
S. R.
,
Gill
,
T.
,
Gnambs
,
T.
,
Gómez
Á.
,
González
R.
,
Graham
,
J.
,
Grahe
,
J. E.
,
Grahek
,
I.
,
Green
,
E. G. T
,
Hai
,
K.
,
Haigh
,
M.
,
Haines
,
E. L.
,
Hall
,
M. P.
,
Heffernan
,
M. E.
,
Hicks
,
J. A.
,
Houdek
,
P.
,
Huntsinger
,
J. R.
,
Huynh
,
H. P.
,
IJzerman
,
H.
,
Inbar
,
Y.
,
Innes-Ker
Å. H.
,
Jiménez-Leal
W.
,
John
M.-S.
,
Joy-Gaba
,
J. A.
,
Kamiloğlu
R. G.
,
Kappes
,
H. B.
,
Karabati
,
S.
,
Karick
,
H.
,
Keller
,
V. N.
,
Kende
,
A.
,
Kervyn
,
N.
,
Knežević
G.
,
Kovacs
,
C.
,
Krueger
,
L. E.
,
Kurapov
,
G.
,
Kurtz
,
J.
,
Lakens
,
D.
,
Lazarević
L. B.
,
Levitan
,
C. A.
,
Lewis
,
N. A.
,
Lins
,
S.
,
Lipsey
,
N. P.
,
Losee
,
J. E.
,
Maassen
,
E.
,
Maitner
,
A. T.
,
Malingumu
,
W.
,
Mallett
,
R. K.
,
Marotta
,
S. A.
,
Međedović
J.
,
Mena-Pacheco
F.
,
Milfont
,
T. L.
,
Morris
,
W. L.
,
Murphy
,
S. C.
,
Myachykov
,
A.
,
Neave
,
N.
,
Neijenhuijs
,
K.
,
Nelson
,
A. J.
,
Neto
,
F.
,
Lee Nichols
A.
,
Ocampo
,
A.
,
O’Donnell
,
S. L.
,
Oikawa
,
H.
,
Oikawa
,
M.
,
Ong
,
E.
,
Orosz
,
G.
,
Osowiecka
,
M.
,
Packard
,
G.
,
Pérez-Sánchez
R.
,
Petrović
B.
,
Pilati
,
R.
,
Pinter
,
B.
,
Podesta
,
L.
,
Pogge
,
G.
,
Pollmann
,
M. M. H
,
Rutchick
,
A. M.
,
Saavedra
,
P.
,
Saeri
,
A. K.
,
Salomon
,
E.
,
Schmidt
,
K.
,
Schönbrodt
,
F. D.
,
Sekerdej
,
M. B.
,
Sirlopú
D.
,
Skorinko
,
J. L. M
,
Smith
,
M. A.
,
Smith-Castro
V.
,
Smolders
K. C. H. J.
,
Sobkow
,
A.
,
Sowden
,
W.
,
Spachtholz
,
P.
,
Srivastava
,
M.
,
Steiner
,
T. G.
,
Stouten
,
J.
,
Street
,
C. N. H
,
Sundfelt
,
O. K.
,
Szeto
,
S.
,
Szumowska
,
E.
,
Tang
,
A. C. W
,
Tanzer
,
N.
,
Tear
,
M. J.
,
Theriault
,
J.
,
Thomae
,
M.
,
Torres
,
D.
,
Traczyk
,
J.
,
Tybur
,
J. M.
,
Ujhelyi
,
A.
,
van Aert
,
R. C. M
,
van Assen
M. A. L. M.
,
van der Hulst
M.
,
van Lange
,
P. A. M
,
van ’t Veer
,
A. E.
,
Vásquez- Echeverría
A.
,
Ann Vaughn
L.
,
Vázquez
A.
,
Vega
,
L. D.
,
Verniers
,
C.
,
Verschoor
,
M.
,
Voermans
,
I. P. J
,
Vranka
,
M. A.
,
Welch
,
C.
,
Wichman
,
A. L.
,
Williams
,
L. A.
,
Wood
,
M.
,
Woodzicka
,
J. A.
,
Wronska
,
M. K.
,
Young
,
L.
,
Zelenski
,
J. M.
,
Zhijia
,
Z.
, and
Nosek
,
B. A.
,
2018
, “
Many Labs 2: Investigating Variation in Replicability Across Samples and Settings
,”
Adv. Methods Pract. Psychol. Sci.
,
1
(
4
), pp.
443
490
.
31.
Cook
,
T. D.
,
Shadish
,
W. R.
, and
Wong
,
V. C.
,
2008
, “
Three Conditions Under Which Experiments and Observational Studies Produce Comparable Causal Estimates: New Findings From Within-Study Comparisons
,”
J. Policy Anal. Manag.
,
27
(
4
), pp.
724
750
.
32.
Schultz
,
P. W.
,
Estrada
,
M.
,
Schmitt
,
J.
,
Sokoloski
,
R.
, and
Silva-Send
,
N.
,
2015
, “
Using In-Home Displays to Provide Smart Meter Feedback About Household Electricity Consumption: A Randomized Control Trial Comparing Kilowatts, Cost, and Social Norms
,”
Energy
,
90
, pp.
351
358
.
33.
Shadish
,
W. R.
,
Clark
,
M. H.
, and
Steiner
,
P. M.
,
2008
, “
Can Nonrandomized Experiments Yield Accurate Answers? A Randomized Experiment Comparing Random and Nonrandom Assignments
,”
J. Am. Stat. Assoc.
,
103
(
484
), pp.
1334
1344
.
34.
Mastropietro
,
P.
,
Rodilla
,
P.
, and
Batlle
,
C.
,
2020
, “
Measures to Tackle the COVID-19 Outbreak Impact on Energy Poverty: Preliminary Analysis Based on the Italian and Spanish Experiences
.”
35.
Ienca
,
M.
, and
Vayena
,
E.
,
2020
, “
On the Responsible Use of Digital Data to Tackle the COVID-19 Pandemic
,”
Nat. Med.
,
26
(
4
), pp.
463
464
.
36.
Kuzemko
,
C.
,
Bradshaw
,
M.
,
Bridge
,
G.
,
Goldthau
,
A.
,
Jewell
,
J.
,
Overland
,
I.
,
Scholten
,
D.
,
Van de Graaf
,
T.
, and
Westphal
,
K.
,
2020
, “
COVID-19 and the Politics of Sustainable Energy Transitions
,”
Energy Res. Soc. Sci.
,
68
, p.
101685
.
37.
Hale
,
T.
,
Petherick
,
A.
,
Phillips
,
T.
, and
Webster
,
S.
,
2020
, “
Variation in Government Responses to COVID-19
,” Blavatnik School of Government Working Paper, vol.
31
.
38.
Chen
,
K.
,
Wang
,
M.
,
Huang
,
C.
,
Kinney
,
P. L.
, and
Anastas
,
P. T.
,
2020
, “
Air Pollution Reduction and Mortality Benefit During the COVID-19 Outbreak in China
,”
Lancet Planet Health
,
4
(
6
), pp.
e210
e212
.
39.
Matsuo
,
T.
, and
Schmidt
,
T. S.
,
2017
, “
Hybridizing Low-Carbon Technology Deployment Policy and Fossil Fuel Subsidy Reform: A Climate Finance Perspective
,”
Environ. Res. Lett.
,
12
(
1
), p.
14002
.
40.
Kumar Sing
,
R.
,
2020
, “
India’s Lockdown Sees Clean Energy Sources Gain at the Expense of Coal
.”
41.
EUROSTAT
,
2019
, “
EU Imports of Energy Products—Recent Developments Statistics Explained
.”
42.
IEA
,
2020
, “
Global Energy Review 2020
,”
Paris
.
43.
Meinrenken
,
C. J.
,
Modi
,
V.
,
Mckeown
,
K. R.
, and
Culligan
,
P. J.
,
2020
, “
New Data Suggest COVID- 19 Is Shifting the Burden of Energy Costs to Households
.”
44.
Wang
,
Q.
, and
Wang
,
S.
,
2020
, “
Preventing Carbon Emission Retaliatory Rebound Post-COVID-19 Requires Expanding Free Trade and Improving Energy Efficiency
,”
Sci. Total Environ.
,
746
, p.
141158
.
45.
Goldberg
,
M. H.
,
Gustafson
,
A.
,
Maibach
,
E. W.
,
Ballew
,
M. T.
,
Bergquist
,
P.
,
Kotcher
,
J. E.
,
Marlon
,
J. R.
,
Rosenthal
,
S. A.
, and
Leiserowitz
,
A.
,
2020
, “
Mask-Wearing Increased After a Government Recommendation: A Natural Experiment in the US During the COVID-19 Pandemic
,”
Front. Commun.
,
5
, p.
44
.
46.
Sui
,
D.
, and
Coleman
,
J.
,
2019
,
Convergence Research in the Age of Big Data: Team Science, Institutional Strategies, and Beyond
,
Merrill Series on the Research Mission of Public Universities
, pp.
23
35
.
47.
Huebner
,
G.
,
Fell
,
M.
, and
Watson
,
N.
,
2020
, “
Improving Research Practices in Energy: Practical Guidance for Greater Transparency, Reproducibility and Quality
.”
48.
Allan
,
J.
,
Donovan
,
C.
,
Ekins
,
P.
,
Gambhir
,
A.
,
Hepburn
,
C.
,
Robins
,
N.
,
Reay
,
D.
,
Shuckburgh
,
E.
, and
Zenghelis
,
D.
,
2020
, “
A Net-Zero Emissions Economic Recovery From COVID-19
,” COP26 Universities Network Briefing.
49.
Pahle
,
M.
,
Burtraw
,
D.
,
Flachsland
,
C.
,
Kelsey
,
N.
,
Biber
,
E.
,
Meckling
,
J.
,
Edenhofer
,
O.
, and
Zysman
,
J.
,
2018
, “
Sequencing to Ratchet Up Climate Policy Stringency
,”
Nat. Clim. Change
,
8
(
10
), pp.
861
867
.
50.
Bowen
,
A.
,
Fankhauser
,
S.
,
Stern
,
N.
, and
Zenghelis
,
D.
,
2009
, “
An Outline of the Case for a ‘Green’ Stimulus
.”
51.
Akrofi
,
M. M.
, and
Antwi
,
S. H.
,
2020
, “
COVID-19 Energy Sector Responses in Africa: A Review of Preliminary Government Interventions
,”
Energy Res. Soc. Sci.
,
68
, p.
101681
.
52.
Pollin
,
R.
,
Garrett-Peltier
,
H.
,
Heintz
,
J.
, and
Scharber
,
H.
,
2008
,
Green Recovery: A Program to Create Good Jobs & Start Building a Low-Carbon Economy
,
Political Economy Research Institute, University of Massachusetts
,
Amherst
.
53.
Blyth
,
W.
,
Gross
,
R.
,
Speirs
,
J.
,
Sorrell
,
S.
,
Nicholls
,
J.
,
Dorgan
,
A.
, and
Hughes
,
N.
,
2014
,
Low Carbon Jobs: The Evidence for Net Job Creation From Policy Support for Energy Efficiency and Renewable Energy
,
UK Energy Research Centre
,
London
.
54.
Jacobs
,
M.
,
2012
,
Green Growth: Economic Theory and Political Discourse
,
Grantham Research Institute on Climate Change and the Environment
.
55.
Steffen
,
B.
,
Egli
,
F.
,
Pahle
,
M.
, and
Schmidt
,
T. S.
,
2020
, “
Navigating the Clean Energy Transition in the COVID-19 Crisis
,”
Joule.
56.
Schmidt
,
T. S.
,
Steffen
,
B.
,
Egli
,
F.
,
Pahle
,
M.
,
Tietjen
,
O.
, and
Edenhofer
,
O.
,
2019
, “
Adverse Effects of Rising Interest Rates on Sustainable Energy Transitions
,”
Nat. Sustain.
,
2
(
9
), pp.
879
885
.
57.
Jin
,
S.
,
2020
, “
COVID-19, Climate Change, and Renewable Energy Research: We Are All in This Together, and the Time to Act Is Now
,”
ACS Energy Lett.
,
5
(
5
), pp.
1709
1711
.
58.
Helgenberger
,
S.
,
2020
, “
Reviving National Economies & Health Systems Following the COVID-19 Pandemic: Renewable Energy May Have a Pivotal Role in Unburdening Health Systems and Restarting Local Economies
.”
59.
Chen
,
C.
,
de Rubens
,
G. Z.
,
Xu
,
X.
, and
Li
,
J.
,
2020
, “
Coronavirus Comes Home? Energy Use, Home Energy Management, and the Social-Psychological Factors of COVID-19
,”
Energy Res. Soc. Sci.
,
68
, p.
101688
.
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