Toolkit SolSmart

Solar Energy Toolkit: The Federal and State Context: Policies Affecting Solar Energy Development

Updated August 2025

Local governments have many tools at their disposal to influence solar energy development. At the same time, decisions made at the federal and state levels set the context for local action and impact the set of strategies that may be most appropriate or effective for a given jurisdiction. This toolkit presents a high-level overview of federal and state policies and programs with an impact on solar energy development.

Federal Programs and Policies

At the federal level, there are several key policies, programs, and regulations that impact the development of solar PV and other renewable energy projects, influencing project procurement options, economics, and development timelines. Historically, many of these policies have focused on reducing the capital costs associated with developing new solar projects, making solar a more attractive option for communities across America. Other federal programs provide useful data, technical assistance, recognition, and research to help local governments develop their own solar programs and pursue local decarbonization, energy security, and economic development goals.

The One Big Beautiful Bill Act (the OBBB) signed in July 2025, as well as subsequent guidance issued by the federal government, significantly rolled back the core tax incentives that clean energy projects have relied on since 2005. While it is still too early to tell the immediate and long-term impact this decision will have on solar markets, state and local solar development goals, and project timelines, the changes indicate a notable shift in federal policy priorities. This will require states, regional organizations, developers, and other interested stakeholders to reevaluate the incentive landscape and rethink the solar development process. Despite recent changes, some of the most important federal programs, initiatives, and agencies include:

THE INVESTMENT TAX CREDIT

The Solar Investment Tax Credit (ITC) is a federal tax incentive first enacted into law in 2005 to encourage the deployment of solar energy (and other clean energy technologies) in the United States. Several legislative extensions have kept the ITC in place over the past two decades. However, the 2025 passage of the One Big Beautiful Bill Act (OBBBA) rapidly phases out the ITC for solar. The 48(e) tax credit will be eliminated for projects that have not substantially begun before July 4, 2026, or are not placed in service before December 31, 2027. The 25(d) residential solar tax credit will end even sooner at the end of 2025.

This federal tax credit is claimed against the tax liability of residential, commercial, and utility-scale investors in solar energy projects. When a homeowner purchases a residential solar energy system, the tax credit is applied against the homeowner’s personal income tax. For commercial and utility-scale projects, as well as for residential projects owned by third parties, the tax credit is claimed by the business that owns the solar energy system.

The amount of the tax credit is determined based on the capital investment required to build a solar project. The credit provides a dollar-for-dollar reduction in the income taxes a person or company would otherwise pay to the federal government. (In contrast, a tax deduction only reduces the amount of income subject to taxes.)

The solar ITC was first established in 2005 as a tax credit of 30 percent on eligible properties. The OBBBA did not eliminate any of the existing Low-Income and Environmental Justice Bonus Tax Credit adders for commercial projects; however, these adders will cease to exist when the tax credit is eliminated after 2027. Several legislative extensions have kept the ITC in place over the past two decades.  The ITC was most recently updated in 2025 in the OBBBA, which directs the incentive program to end on December 31, 2027 for commercial projects, and December 31, 2025 for residential projects.

The Safe Harbor provisions allow a solar project that has already undergone significant development to lock in its tax credit under the current tax law, protecting the project from economic challenges that could result from a change in tax code. There are no safe harbor provisions for residential projects. The timeline for the expiration of the ITC for commercial projects shifted these “safe harbor” provisions:

In addition to changes to the timeline of implementation of the ITC, the OBBB places additional restrictions on material costs paid to Foreign Entities of Concern (FEOCs). For solar projects, this primarily impacts system components from Chinese companies. In 2026, solar projects are limited to 60% of equipment costs originating from Chinese owned companies, decreasing 5% annually down to 40% in 2029 and beyond. [3]

THE PUBLIC UTILITIES REGULATORY ACT OF 1978 (PURPA)

The Public Utilities Regulatory Act of 1978 (PURPA) is a federal policy designed to conserve electricity, improve utility-sector energy efficiency, and promote equitable electricity rates.[4]  In recent years, PURPA has played a significant role in expanding the growth of solar energy in many parts of the United States. This is a result of PURPA’s mandate that utilities purchase power from small renewable energy producers when the cost of that electricity is less than what the utility would pay to deliver its own power.

Specifically, PURPA requires utilities to purchase from energy producers known as qualifying facilities (QFs). Power producers can qualify as a QF by meeting one of two standards:[5]

PURPA mandates that utilities purchase electricity from QFs if the electricity can be provided at an “avoided cost.” The avoided cost is defined as the cost the utility would have incurred to generate or otherwise acquire the electricity from a third party. In recent years, PURPA has had a particularly significant impact in regions where there are few other state-level incentives for solar energy development.

In 2020, FERC revised PURPA regulations in FERC Order 872 (FO872). States are allowed to set QF rates to a variable wholesale rate instead of a fixed cost, and the size of the projects subject to those rates was reduced to 5 MW.[6] These changes will help reduce costs to utility customers who were paying excess costs to compensate for the utility paying a high QF rate, but states that have lower avoided cost rates may see weaker benefits to renewable electricity generation. It is important for solar facility owners to understand how their state has decided to implement PURPA to gauge the impacts on renewable energy development.

THE FEDERAL ENERGY REGULATORY COMMISSION (FERC)

The Federal Energy Regulatory Commission (FERC) is an independent agency that regulates the interstate transmission and distribution of oil, natural gas, and electricity.[7] With regard to electricity, FERC focuses on wholesale power markets, market-based rates, demand response and advanced metering, electric reliability, transmission investment, transmission planning and cost allocations, and mergers and corporate transactions. FERC does not regulate retail electricity sales to customers or approve the construction of electric generation facilities, which are jurisdictional responsibilities largely handled at the state level.

In 2020, FERC enacted FERC Order 2222 (FO2222), which modifies FERC regulations to require each region transmission organization (RTO) and independent system operator (ISO) to revise its tariff to ensure that its market rules facilitate the participation of distributed energy resource (DER) aggregations.[8] Allowing aggregation of DERs enables projects to participate in regional markets and earn compensation when they would otherwise be too small to participate individually. Previous rules were designed for large, centralized resources, such as fossil fuel power plants, and this order allows distributed solar facility owners to receive compensation for the energy they produce.[9] Local governments can act as a convenor of a supply-side aggregation program with private DER owners.

FO2222 has not been fully implemented. RTOs and ISOs have all submitted their compliance filings to FERC as part of the process of revising their tariffs, but actual implementation date ranges between 2024 and 2029 depending on RTO/ISO.[10] Local governments and solar facility owners should monitor the progress of the applicable RTO/ISO in its compliance filing process to understand when and how to participate in the regional market with DER aggregation and what the compensation rates will be.

SOLAR ENERGY TECHNOLOGIES OFFICE

The Solar Energy Technologies Office (SETO) is part of the U.S. Department of Energy Office of Energy Efficiency and Renewable Energy and funds innovations in solar technologies. In its own words, SETO “supports early-stage research and development in three technology areas: photovoltaics (PV), concentrating solar-thermal power (CSP), and systems integration with the goal of improving the affordability, reliability, and domestic benefit of solar technologies on the grid.”[11] Funding from SETO supports all facets of the solar market, including improvements in the technical efficiencies of PV systems; improvements in grid performance and reliability; and the creation of new business models.

SolSmart is a part of a portfolio of projects within SETO working to lower the “soft costs” of going solar, which are the non-hardware costs that drive up the expense of installations. Local government processes in areas such as permitting, inspection, and planning and zoning can drive up solar soft costs. To reduce these costs, SETO provides networking and technical assistance, data analysis, business innovation, and training.

U.S. ENERGY INFORMATION ADMINISTRATION (EIA)

The U.S. Energy Information Administration (EIA) is a non-partisan statistical agency within DOE that collects comprehensive U.S. energy data and prepares analyses, market forecasts, and long-term outlooks.[12] The EIA surveys and collects data on a variety of energy markets, including petroleum, coal, and natural gas, as well as renewable energy sources including solar.

This data is accessible free of charge, making the EIA an important resource for local governments. The EIA provides several resources that are particularly useful, notably the State Energy Data System (SEDS). The SEDS database contains a variety of state-specific data, including information on all types of energy consumption by source and sector; energy production; electricity generation; and energy prices. The EIA also provides interactive maps that show the location of energy infrastructure. Additional information can be found in the Electric Power Annual, which includes monthly distributed solar data by state.[13]

In addition, the EIA publishes an annual report, the Annual Energy Outlook, which makes projections on the future of national energy markets.[14]  This includes projections for the growth of both the utility-scale and distributed solar markets to 2040, based on current laws and policies. The EIA also releases short publications daily with updates on data trends.

State Programs and Practices

Many policies that advance the growth of solar energy are established at the state level. This can include state tax incentives for solar, which provide an additional tax benefit on top of the federal ITC. Other state policies, discussed below, can include:

RENEWABLE PORTFOLIO STANDARDS (RPS)

A Renewable Portfolio Standard (RPS) is a policy or regulation that requires utilities to produce a certain percentage of their energy from renewable sources. These renewables typically include solar, wind, biomass, geothermal, and hydropower.[15] Since 2000, just under half of all renewable energy generation and capacity is associated with state RPS requirements.[16]

While the specifics vary by state, an RPS always requires electricity suppliers to source a certain amount of renewable energy over a pre-determined time frame. This is measured either as a percentage of the total energy demand (e.g., 30 percent renewable energy by 2030), or as a quantity of energy produced in MWh. To meet the RPS, utilities can develop their own renewable resources; purchase renewable electricity from third parties; or acquire what are known as Renewable Energy Certificates (RECs), which are discussed below in more detail.

In some cases, utilities can meet the state RPS target using any renewable technologies of their choice. Other times, the RPS will include specific targets for each type of renewable generation, often termed “carve-outs” or “set-asides.”[17]  Set-asides can require that a percentage of the electricity be provided by distributed generation, which in practice often means residential solar installed on rooftops. Without set-asides, larger renewable generation projects, such as wind farms and utility-scale solar, tend to be prioritized due to their lower costs per MW. A distributed energy set-aside creates an opportunity for the growth of rooftop solar and other small-scale renewable generation.

An RPS is usually set statewide and applies to investor-owned utilities. As of 2024, 29 states plus the District of Columbia have adopted an RPS.[18] Of these, 16 have final targets ≥50% of retail sales, and 4 have a 100% RPS targets.[19] Sometimes, however, cooperative and municipal utilities establish an RPS that does not apply to the rest of the state.

RENEWABLE ENERGY CERTIFICATES (RECs) AND SOLAR RENEWABLE ENERGY CERTIFICATES (SRECs)

A Renewable Energy Certificate (REC) equals one MWh of renewable energy. Solar Renewable Energy Credits (SRECs) are a type of REC created specifically by the generation of solar energy. Typically, one SREC is created for each MWh of electricity generated by a solar energy system. [20]

SRECs are created in markets that include a solar set-aside as part of the RPS.[21] To meet set-aside mandates, utilities need to either own solar energy installations or acquire SRECs from retail customers who install rooftop solar. Therefore, SRECs can provide a financial incentive for utilities, homeowners, and businesses to install solar energy. Utilities can either purchase SRECs directly from customers or acquire them in the marketplace from SREC brokers.

The price of SRECs can fluctuate dramatically depending on supply and demand. If a state’s RPS targets are well above current solar energy production, utilities will demand more RECs or SRECs, raising the price. The highest price for an SREC is typically set by what is known as an Alternative Compliance Payment (ACP). If a utility does not acquire enough SRECs to meet the RPS, it is subject to fines by the regulator at the ACP level (expressed in dollars per MWh). Since a utility would never pay more for an SREC than the ACP, this effectively caps the market price of SRECs.

As of 2024, states with SREC markets include New Jersey, Massachusetts, Maryland, Delaware, North Carolina, Illinois, Pennsylvania, along with the District of Columbia. Eight other states have some form of a solar or distributed energy carve-out, but do not have an SREC market.[22] Many other states participate in REC markets without a carve-out for solar.[23]

Figure 3: The Life Cycle of an SREC.[24]

NET METERING

Net energy metering, commonly referred to as “net metering,” is designed to compensate utility customers for the electricity they export to the grid.[25] Most distributed solar PV systems are designed so that the electricity produced is used directly in the residence or business, with any excess amount sent back to the utility. Net metering provides financial credit to customers based on the value of the electricity not used on-site.

A net metering program typically works as follows. At the end of each billing cycle, the amount of electricity imported from the grid is netted against the electricity exported to the grid. If the imported amount exceeds the exported amount, the customer is billed for the net electricity consumed. If the exported amount exceeds the imported amount, the customer receives a credit that can be used to offset electricity bill payments in future billing cycles. Depending on the policy, these credits can either roll forward indefinitely or expire at the end of some fixed term, such as the end of the calendar year.[26] Each state enacts policies to set limits on the size of individual systems and on the overall capacity allowed to be net-metered on the grid. These system-wide limitations also help assure grid stability. Tiered policies help ensure that residential-scale PV systems get installed without the overall net metering capacity being filled up with larger-scale net metering projects.

Figure 4: States with Net Metering Policies as of June 2023.[27]

Net metering is a very important tool for making distributed solar economical for consumers. Without it, many rooftop solar installations, especially at the residential level, would not generate enough savings to justify the investment. As of 2023, 34 states, in addition to Washington, D.C, the U.S. Virgin Islands, Guam, and Puerto Rico, have mandatory net metering policies. In addition, some utilities have voluntarily offered net metering arrangements to customers (for example, in Idaho and Texas).[28]

The compensation level for net metering varies by state. Many states mandate that utilities compensate net metering customers at the full retail rate for electricity. Other states set compensation at a different level, such as the much lower wholesale rate, while others set it at a midpoint between wholesale and retail. Net metering policies are under active discussion in many states and the topic of spirited debate, particularly as market conditions change and increasing numbers of residential consumers go solar. Utilities sometimes object that net metering unfairly exempts distributed solar consumers from paying their fair share of costs to support the maintenance of the grid. However, distributed solar also provides many benefits to the grid, which can include deferring the need for investment in new capacity, creating local jobs, reducing greenhouse gas emissions, and generating energy at the local level.

NET METERING PROGRAM DESIGN

Net metering policies usually include the following details:

VIRTUAL NET METERING

A variation on net metering policies is known as virtual net metering, which uses the same compensation mechanism and billing methods without requiring that a customer’s PV system be located on-site.[29] Rather, customers can own a share of an off-site solar project (also known as community solar, shared solar, or a solar garden) and receive a credit on their electricity bill for their share of the energy produced. Virtual net metering is one of the key policies that is necessary for a community solar program to be successful. More in-depth information on community solar program models can be found in the Community Solar toolkit.

THIRD-PARTY FINANCING

Third-party financing, also known as third-party ownership, is available in many states for customers who are unable or unwilling to finance the cost of a solar project themselves. Historically, it has been one of the most popular methods for installing residential and commercial solar energy systems.[30]  More recently, however, as costs have come down, an increasing number of residential customers are using cash purchases and [31] Third-party financing typically takes the form of one of two models. In one approach, a customer signs a power purchase agreement (PPA) to pay a third party a specified rate for the electricity generated each month. In the second model, a customer signs a solar lease and pays a monthly rate for the use of a PV system. Below is a brief overview of how these two financing models work.

POWER PURCHASE AGREEMENTS (PPAs)

Under the power purchase agreement model of third-party ownership, a customer signs a PPA for the project developer to sell electricity at a rate determined in the contract. The developer builds, owns, and operates a solar energy system at the customer’s home or business (with the customer referred to as the “host”). Most often, the electricity rate the developer charges is comparable to, if not less than, the retail rate of electricity. Under a typical structure of the PPA, the host customer receives a credit on their electric bill for the amount of energy generated by the solar energy system, and then pays the project developer a portion of the value of that credit (e.g. the host pays the developer 90% of the bill credit value resulting in a 10% savings on a portion of their electric bill).  A PPA allows the customer to enjoy the benefits of solar energy without paying the up-front capital cost of installing a PV system. The project developer is also responsible for system operations and maintenance.

In a PPA contract, the project developer receives a combination of revenues and incentives which help offset the capital cost of the project. These include electricity sales to the host and proceeds from any SREC sales to third parties, as well as any state and federal tax incentives. In most cases, at the end of a PPA contract term, property owners have the option to extend the contract, purchase the system from the PPA provider, or have the system removed from their premises. As of June 2025, 29 states along with Washington, D.C. and Puerto Rico allow PPAs.[32]

Figure 5: States that Authorize or Allow 3rd Party Solar PV PPAs as of June 2025[33]

SOLAR LEASES

Solar leases are similar to PPAs in many respects. The difference is that the monthly rate covers the solar system itself, rather than the cost of electricity. Under the solar lease model, customers sign a contract with a solar developer and agree to pay a specified rate over the life of the lease, which typically covers 10-20 years. As with PPAs, solar lease customers do not own the PV system, and the project developer is responsible for system operations and maintenance. The project developer typically receives any SRECs and all federal or state tax benefits available. At the end of the lease contract, the customer can extend the lease, buy the system, or have the system removed. In certain markets where PPAs are not permitted by law, solar leases may be the only third-party option available. In other states, however, neither solar leases nor PPAs are permitted.

CLEAN ENERGY FUNDS

State clean energy funds are another way to support renewable energy, energy efficiency, or low-income energy programs. They are capitalized by a small surcharge on electricity consumption, as well as by voluntary donations and utility settlements. These funds can directly pay for renewable energy projects, support rebate programs for renewable energy systems, or provide loan support mechanisms. They can also be used to fund research and development, demonstration projects, and consumer outreach and education.[34]

LOW-INTEREST LOANS

Some states, often through their clean energy funds, offer low-interest loans or loan guarantees to support improvements in energy infrastructure, including distributed solar projects. Terms and interest rates vary on a state-by-state basis. As an example, Massachusetts recently offered the Mass Solar Loan program, which made low-interest loans available for solar installations and provided additional loan support for lower-income borrowers. The program supported nearly 5,800 projects, more than half of which were held by low-income consumers.[35]

ON-BILL FINANCING AND REPAYMENT

On-bill financing and repayment is a way for utilities to help customers invest in renewable energy projects. On-bill financing typically refers to financing that is provided directly by the utility, whereas on-bill repayment typically refers to a third party providing the financing with the repayment being made through the utility bill. Customers receive loans from a state energy office, a financial institution, or the utility itself. Loan payments are directly incorporated into the utility bill and are repaid monthly by the customer.[36]

On-bill financing has two distinct advantages compared to a traditional loan. The first is that the loan pays for investments that result in lower electricity costs, so both the cost savings and the loan payment will be reflected on the same bill. Ideally, the electricity savings will offset the loan repayment costs and demonstrate the value of the investment. A second advantage is that since the loans are tied directly to utility service, the utility is able to suspend service to customers who fail to make the loan payments, which helps to deter loan defaults.[37] In practice, however, utilities can be hesitant to suspend service, and regulations often limit their ability to cut off a customer’s power.

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ENDNOTES


[1] KPMG, Notice 2025-42: Beginning of construction requirements for termination of clean electricity tax credits under sections 45Y and 48E, August 15, 2025, https://kpmg.com/us/en/taxnewsflash/news/2025/08/notice-2025-42-beginning-construction-requirements-termination-clean-electricity-tax-credits.html

[2] Norton Rose Fulbright, New Construction-Start Rules for Wind and Solar, August 15, 2025, https://www.projectfinance.law/publications/2025/august/new-construction-start-rules-for-wind-and-solar/

[3] IRS, Publication 946 (2024), How To Depreciate Property, https://www.irs.gov/publications/p946.

[4] Alexandra Aznar, Word of the Day: PURPA, National Renewable Energy Laboratory, April 10, 2015, https://www.nrel.gov/state-local-tribal/blog/posts/word-of-the-day-purpa.html.

[5] American Public Power Association, The Public Utility Regulatory Policies Act of 1978, https://www.publicpower.org/policy/public-utility-regulatory-policies-act-1978 (accessed August 21, 2020).

[6] FERC. Order No. 872-A (2020). https://www.ferc.gov/media/order-no-872 

[7] Federal Energy Regulatory Commission, https://www.ferc.gov/ (accessed June 1, 2017).

[8] FERC. Order No. 2222: Fact Sheet (2020). https://www.ferc.gov/media/ferc-order-no-2222-fact-sheet 

[9] FERC. FERC Order No. 2222 Explainer: Facilitating Participation in Electricity Markets by Distributed Energy Resources (2020), https://www.ferc.gov/ferc-order-no-2222-explainer-facilitating-participation-electricity-markets-distributed-energy#_edn70-p=

[10] FERC. FERC Order No. 2222 Explainer: Facilitating Participation in Electricity Markets by Distributed Energy Resources (2020), https://www.ferc.gov/ferc-order-no-2222-explainer-facilitating-participation-electricity-markets-distributed-energy#_edn70-p=

[11] U.S. Department of Energy, About the Solar Energy Technologies Office, https://www.energy.gov/eere/solar/about-solar-energy-technologies-office (accessed August 20, 2021).

[12] Cara Marcy, Top five sources for solar data available at EIA, National Renewable Energy Laboratory, July 8, 2016, https://www.nrel.gov/state-local-tribal/blog/posts/top-five-sources-for-solar-data-available-at-eia.html.

[13] U.S. Energy Information Administration, Electric Power Annualhttps://www.eia.gov/electricity/annual/ (accessed December 10, 2018).

[14] U.S. Energy Information Administration, Annual Energy Outlook 2021, Feb. 3, 2021, https://www.eia.gov/outlooks/aeo/.

[15] Sadie Cox, et al., Solar Power: Policy Overview and Good Practices, Clean Energy Solutions Center2015, http://www.nrel.gov/docs/fy15osti/64178.pdf.

[16] Galen Barbose, U.S. Renewables Portfolio Standards 2021 Status Update: Early Release, Lawrence Berkeley National Laboratory, February 2021, https://emp.lbl.gov/publications/us-renewables-portfolio-standards-1.

[17] Sadie Cox, et al., Solar Power: Policy Overview and Good Practices, Clean Energy Solutions Center2015, http://www.nrel.gov/docs/fy15osti/64178.pdf.

[18] LBNL, U.S. State Renewables Portfolio & Clean Electricity Standards: 2024 Status Update, August, 2024, https://eta-publications.lbl.gov/sites/default/files/lbnl_rps_ces_status_report_2024_edition.pdf

[19] LBNL, U.S. State Renewables Portfolio & Clean Electricity Standards: 2024 Status Update, August, 2024, https://eta-publications.lbl.gov/sites/default/files/lbnl_rps_ces_status_report_2024_edition.pdf

[20] Lori Bird et al., Solar Renewable Energy Certificate (SREC) Markets: Status and Trends, National Renewable Energy Laboratory, 2011, http://www.nrel.gov/docs/fy12osti/52868.pdf.

[21] Jenny Heeter et al., Implications of the Scheduled Federal Investment Tax Credit Reversion for Renewable Portfolio Standard Solar Carve-Out Compliance, National Renewable Energy Laboratory, 2015, http://www.nrel.gov/docs/fy15osti/64506.pdf.

[22] LBNL, U.S. State Renewables Portfolio & Clean Electricity Standards: 2024 Status Update, August, 2024, https://eta-publications.lbl.gov/sites/default/files/lbnl_rps_ces_status_report_2024_edition.pdf

[23] SRECTrade, Solar Renewable Energy Certificates,” https://www.srectrade.com/markets/rps/srec/ (accessed Aug. 20, 2021).

[24] SRECTrade, Solar Renewable Energy Certificates, https://www.srectrade.com/markets/rps/srec/introduction#sreclifecycle.

[25] “Net Metering,” NREL: State, Local, & Tribal Governments, https://www.nrel.gov/state-local-tribal/basics-net-metering.html (accessed May 27, 2017).

[26] “Net Metering,” NREL: State, Local, & Tribal Governments, https://www.nrel.gov/state-local-tribal/basics-net-metering.html (accessed May 27, 2017).

[27] DSIRE, Detailed Summary Maps, https://www.dsireusa.org/resources/detailed-summary-maps/

[28] DSIRE, Detailed Summary Maps, https://www.dsireusa.org/resources/detailed-summary-maps/

[29] “Net Metering,” NREL: State, Local, & Tribal Governments, https://www.nrel.gov/state-local-tribal/basics-net-metering.html (accessed May 27, 2017).

[30] Solar Energy Industries Association, Third-Party Solar Financing, http://www.seia.org/policy/finance-tax/third-party-financing (accessed June 2, 2017).

[31] Mike Munsell, Share of Third-Party-Owned Systems at Record-Low Levels in US Residential Solar, Greentech Media, May 1, 2018, https://www.greentechmedia.com/articles/read/share-of-third-party-owned-systems-at-record-low-levels-in-us-resident#gs.gHfW1WI.

[32] DSIRE, Detailed Summary Maps,  https://www.dsireusa.org/resources/detailed-summary-maps/

[33] DSIRE, Detailed Summary Maps,  https://www.dsireusa.org/resources/detailed-summary-maps/

[34] Michael Mendelsohn and Claire Kreycik, Federal and State Structures to Support Financing Utility-Scale Solar Projects and the Business Models Designed to Utilize Them, National Renewable Energy Laboratory, April 2012, http://www.nrel.gov/docs/fy12osti/48685.pdf.

[35] MASS Solar Loan, Program Metrics, https://www.masssolarloan.com/program-metrics, (accessed Aug. 21, 2020).

[36] U.S. Department of Energy, On-Bill Financing and Repayment Programs, https://energy.gov/eere/slsc/bill-financing-and-repayment-programs (accessed June 5, 2017).

[37] Philip Henderson, On-Bill Financing: Overview and Key Considerations for Program Design, Natural Resources Defense Council, July 2013, https://www.nrdc.org/sites/default/files/on-bill-financing-IB.pdf.

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