Language:
English
繁體中文
Help
Login
Back
Switch To:
Labeled
|
MARC Mode
|
ISBD
The Science Behind Regulating Uncertain Harms of Lithium-Ion Batteries : = Second Harmonic Generation Spectroscopy and Environmental Protection Agency.
Record Type:
Language materials, manuscript : Monograph/item
Title/Author:
The Science Behind Regulating Uncertain Harms of Lithium-Ion Batteries :/
Reminder of title:
Second Harmonic Generation Spectroscopy and Environmental Protection Agency.
Author:
Chang, HanByul.
Description:
1 online resource (262 pages)
Notes:
Source: Dissertations Abstracts International, Volume: 84-11, Section: B.
Contained By:
Dissertations Abstracts International84-11B.
Subject:
Physical chemistry. -
Online resource:
click for full text (PQDT)
ISBN:
9798379589592
The Science Behind Regulating Uncertain Harms of Lithium-Ion Batteries : = Second Harmonic Generation Spectroscopy and Environmental Protection Agency.
Chang, HanByul.
The Science Behind Regulating Uncertain Harms of Lithium-Ion Batteries :
Second Harmonic Generation Spectroscopy and Environmental Protection Agency. - 1 online resource (262 pages)
Source: Dissertations Abstracts International, Volume: 84-11, Section: B.
Thesis (Ph.D.)--Northwestern University, 2023.
Includes bibliographical references
The increase in the demand and use of lithium-ion batteries (LIBs) in electric vehicles (EVs) calls for escalated attention from scientists and policymakers. LIBs pose three scientifically intriguing problems: 1) the manufacture of LIBs contributes to the depletion of critical metals and emit greenhouse gases; 2) the chemicals used in LIB cathode materials are reported to be toxic to the environment; and 3) there is no streamlined, practical recycling programs that will prepare the world for an influx of spent LIBs in the next decade or so. These problems also present legal challenges because of the unprecedented use and disposal of LIBs that pose potential hazards to the environment and health. This thesis aims to guide science and law to study these potential hazards and protect the environment and health.We demonstrate the suitability of a non-linear optical technique, second harmonic generation (SHG) spectroscopy, to study the impact of LIB materials interacting with environmental and biological surfaces buried under water. Although many environmentally and biologically relevant interactions happen under water, a surface-specific technique that allows for study of interfacial reactions occurring in native environments (i.e., hydrated under water) has been lacking. Both homodyne and heterodyne-detected (HD) SHG spectroscopic techniques can elucidate important surface phenomena under water. Using homodyne SHG spectroscopic methods, we report on the surface charge densities of biological membranes and adsorbed ions, equilibrium constants and free energies of adsorption, and reversibility of adsorption. These values help predict how readily different pollutants, including LIB materials, will adsorb onto surfaces and how persistent the adsorptions are, shedding light on the potential toxicity of the adsorbates. Next, we use HD-SHG to untangle the surface and bulk contributions to the SHG signal to directly and unambiguously observe surface-specific phenomena, such as charge reversal, and illuminate a molecular picture at the interface as the molecules interact with biological and geological surfaces. These studies, in tandem with other techniques and toxicological studies, can provide a clearer picture of the mechanism and pathway through which LIB materials pose toxic impact on the environment and health. Next, we argue that policies and regulations must be designed to protect the environment and health from the potential hazards of LIBs under the proposed strand of the Precautionary Principle. When regulating under uncertainty of harm, EPA must act proactively and preemptively to minimize harm while shifting the burden to the proponent to prove the safety of an activity. The current regulatory scheme is insufficient to protect the environment and health from hazards associated with LIBs. Under the proposed Precautionary Principle, I make several concrete suggestions for changes in the current environmental law, focusing on the Toxic Substances Control Act and Resource Conservation and Recovery Act, which can aid in precautionary regulations and shifting of the burden. I end the thesis by calling on scientists and citizens to adopt the Precautionary Principle to perform science to develop safer LIBs and to raise awareness of the potential hazards of LIBs.
Electronic reproduction.
Ann Arbor, Mich. :
ProQuest,
2024
Mode of access: World Wide Web
ISBN: 9798379589592Subjects--Topical Terms:
1148725
Physical chemistry.
Subjects--Index Terms:
BilayerIndex Terms--Genre/Form:
554714
Electronic books.
The Science Behind Regulating Uncertain Harms of Lithium-Ion Batteries : = Second Harmonic Generation Spectroscopy and Environmental Protection Agency.
LDR
:04781ntm a22004097 4500
001
1152100
005
20241122094121.5
006
m o d
007
cr mn ---uuuuu
008
250605s2023 xx obm 000 0 eng d
020
$a
9798379589592
035
$a
(MiAaPQ)AAI30316002
035
$a
AAI30316002
040
$a
MiAaPQ
$b
eng
$c
MiAaPQ
$d
NTU
100
1
$a
Chang, HanByul.
$3
1478985
245
1 4
$a
The Science Behind Regulating Uncertain Harms of Lithium-Ion Batteries :
$b
Second Harmonic Generation Spectroscopy and Environmental Protection Agency.
264
0
$c
2023
300
$a
1 online resource (262 pages)
336
$a
text
$b
txt
$2
rdacontent
337
$a
computer
$b
c
$2
rdamedia
338
$a
online resource
$b
cr
$2
rdacarrier
500
$a
Source: Dissertations Abstracts International, Volume: 84-11, Section: B.
500
$a
Advisor: Geiger, Franz M.
502
$a
Thesis (Ph.D.)--Northwestern University, 2023.
504
$a
Includes bibliographical references
520
$a
The increase in the demand and use of lithium-ion batteries (LIBs) in electric vehicles (EVs) calls for escalated attention from scientists and policymakers. LIBs pose three scientifically intriguing problems: 1) the manufacture of LIBs contributes to the depletion of critical metals and emit greenhouse gases; 2) the chemicals used in LIB cathode materials are reported to be toxic to the environment; and 3) there is no streamlined, practical recycling programs that will prepare the world for an influx of spent LIBs in the next decade or so. These problems also present legal challenges because of the unprecedented use and disposal of LIBs that pose potential hazards to the environment and health. This thesis aims to guide science and law to study these potential hazards and protect the environment and health.We demonstrate the suitability of a non-linear optical technique, second harmonic generation (SHG) spectroscopy, to study the impact of LIB materials interacting with environmental and biological surfaces buried under water. Although many environmentally and biologically relevant interactions happen under water, a surface-specific technique that allows for study of interfacial reactions occurring in native environments (i.e., hydrated under water) has been lacking. Both homodyne and heterodyne-detected (HD) SHG spectroscopic techniques can elucidate important surface phenomena under water. Using homodyne SHG spectroscopic methods, we report on the surface charge densities of biological membranes and adsorbed ions, equilibrium constants and free energies of adsorption, and reversibility of adsorption. These values help predict how readily different pollutants, including LIB materials, will adsorb onto surfaces and how persistent the adsorptions are, shedding light on the potential toxicity of the adsorbates. Next, we use HD-SHG to untangle the surface and bulk contributions to the SHG signal to directly and unambiguously observe surface-specific phenomena, such as charge reversal, and illuminate a molecular picture at the interface as the molecules interact with biological and geological surfaces. These studies, in tandem with other techniques and toxicological studies, can provide a clearer picture of the mechanism and pathway through which LIB materials pose toxic impact on the environment and health. Next, we argue that policies and regulations must be designed to protect the environment and health from the potential hazards of LIBs under the proposed strand of the Precautionary Principle. When regulating under uncertainty of harm, EPA must act proactively and preemptively to minimize harm while shifting the burden to the proponent to prove the safety of an activity. The current regulatory scheme is insufficient to protect the environment and health from hazards associated with LIBs. Under the proposed Precautionary Principle, I make several concrete suggestions for changes in the current environmental law, focusing on the Toxic Substances Control Act and Resource Conservation and Recovery Act, which can aid in precautionary regulations and shifting of the burden. I end the thesis by calling on scientists and citizens to adopt the Precautionary Principle to perform science to develop safer LIBs and to raise awareness of the potential hazards of LIBs.
533
$a
Electronic reproduction.
$b
Ann Arbor, Mich. :
$c
ProQuest,
$d
2024
538
$a
Mode of access: World Wide Web
650
4
$a
Physical chemistry.
$3
1148725
650
4
$a
Law.
$3
671705
650
4
$a
Chemistry.
$3
593913
650
4
$a
Environmental law.
$3
567063
653
$a
Bilayer
653
$a
Interface
653
$a
Lithium-ion batteries
653
$a
Second harmonic generation
653
$a
Spectroscopy
655
7
$a
Electronic books.
$2
local
$3
554714
690
$a
0494
690
$a
0398
690
$a
0439
690
$a
0485
710
2
$a
ProQuest Information and Learning Co.
$3
1178819
710
2
$a
Northwestern University.
$b
Chemistry.
$3
1192648
773
0
$t
Dissertations Abstracts International
$g
84-11B.
856
4 0
$u
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=30316002
$z
click for full text (PQDT)
based on 0 review(s)
Multimedia
Reviews
Add a review
and share your thoughts with other readers
Export
pickup library
Processing
...
Change password
Login
Please sign in
User name
Password
Remember me on this computer
Cancel
Forgot your password?